
Einsteiger:innen
Designing a Mixed-Methods Study
SwMoe933f55cb18f7598f5ba
1 Std.
plan a sequential or concurrent mixed-methods design and justify the integration point.
- Schwierigkeit

Creator:in
Walter Kurz lehrt, wie Enterprise-KI-Systeme entworfen werden, damit sie einer regulatorischen Prüfung standhalten, von Multiagentensystemen bis zu Distributed Ledgers. Er forscht zu KI, wurde 2024 von Forbes als Fachperson für KI anerkannt und spricht als Keynote-Speaker zu KI-Innovation und KI-Geschäftsmodellen. Als Professor betreut er KI-Promotionen auf EQF-8-Niveau, sowohl PhD als auch DBA, und leitet die Fakultät Advanced AI Studies. Er promovierte an der Universität Graz in Betriebswirtschaft und Management und hält einen MBA in Change Management der Universität Augsburg. Seine Forschung umfasst die Unternehmensbewertung unter KI-Integration, KI im Enterprise Risk Management und ESG mit KI; für das American Journal of Artificial Intelligence in New York arbeitet er als Peer-Reviewer.
Verfasste Inhalte

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plan a sequential or concurrent mixed-methods design and justify the integration point.

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see model training as likelihood maximisation.

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apply the German BAIT expectations to an AI-supported risk process.

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deploy an agent for scheduling and follow-up with clear guardrails.

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A short list of AI uses the EU AI Act forbids outright, regardless of safeguards. These prohibitions mark the hard edge of what the law will not permit.

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define VaR and state precisely what it does and does not measure.

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estimate and control what serving a model in the cloud costs.

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move a training or inference workload to managed cloud infrastructure.

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summarise data with statistics that resist outliers.

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keep partners, advisory boards, and the funder aligned.

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prepare and hold a supervisory conversation about a model or AI system.

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build an analysis that another person can rerun and reproduce.

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make a model's logic understandable to a non-specialist.

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Proving that the tested journal reconciles completely to the reported financial-statement figures.

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quantify process risk so it can be prioritised.

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match enablement content and plays to the specific deal situation rather than a one-size playbook, using AI to select.

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use independent witnesses to catch a forked or rewritten log.

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stay within professional rules when AI enters the tax practice.

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write a validation report that states findings, limitations, conditions, and an approval recommendation.

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check a finance provision against constitutional and framework budget rules.

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explain the legal framework governing how the state may budget and spend.

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cluster a customer base with AI and interpret the segments for action.

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extract patterns from won and lost deals and separate signal from story.

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understand DRG-based case revenue logic.

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spot when a long conversation has lost the thread.

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treat mixed taxable, exempt, and non-economic activity correctly.

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produce routine legal letters and notices grounded in matter facts.

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Designing capital and share classes so economic ownership and voting control line up with the founders' intent.

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validate an expected-credit-loss model against IFRS 9 requirements.

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Spotting where recent posts fell away from a defined visual system and need correction.

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organise knowledge with shared vocabularies and hierarchies.

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Treating an AI output as a lead to be corroborated rather than as evidence in itself, and documenting the corroboration.

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build a Windows desktop application with WPF.

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compute and compare the unit cost of a public service across providers.

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take an AI capability from a working demo to a system an organisation can depend on.

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Forming and aligning a new team quickly with AI support in the early phase.

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Generating a board-ready interview and evaluation framework for a C-level appointment.

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label data by sensitivity to drive the right controls.

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Helping learners see and evaluate opportunities, and building the habit of spotting problems worth solving.

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When defective examples are scarce, inspection turns to anomaly methods that learn only normal appearance. This handles the common case where good parts vastly outnumber bad.

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surface and reason about channel conflict using AI-structured analysis.

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measure learning transfer and business impact.

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Cutting false-positive alert volumes while defending that genuine risks are still caught. The tension between noise reduction and missed risk is the hard part.

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adjust a sample so it matches the population.

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Adapting a short's captions and voice for a different-language audience while keeping the message.

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supervise a practice-based doctorate that meets both academic and professional standards.

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monitor whether promised savings actually materialise.

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grant each identity the minimum access it needs.

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state a firm's tolerance for model error and translate it into concrete control thresholds.

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make systems that were built separately work together.

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trace how input error becomes output error.

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handle the tax profile of a charitable limited company.

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agree on a single value across unreliable nodes.

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SwMo558feeb74cde7d4013b6
1 Std.
Certain signs, like overly specific citations, suspiciously neat detail, or claims you cannot verify, suggest a passage may be invented. Spotting them is a practical defence against hallucination.

SwMocae0688074ac58319f43
1 Std.
How to build a full cost picture of an AI system including data, inference, oversight, and maintenance over its life. Sticker cost is a small part of the total.

SwMobc04e9cc6da5255b05a1
1 Std.
How to test a crisis liquidity plan for completeness and realism, so the cash runway it promises can be trusted.

SwMod667fe4e6baebda8bc29
1 Std.
read an AI dynamic-pricing recommendation and the fairness and trust limits around it.

SwMo47947761e08c3698e07d
1 Std.
AI can accelerate or extend the simulation of a mechatronic system, for example as a fast surrogate. This speeds design iterations that full physics simulation makes slow.

SwMof70260db9bdfa7cc83ac
1 Std.
understand how the database serialises access and how deadlocks arise.

SwMo7f7885414e8833e8db69
1 Std.
In AI, bias means systematic and unfair error, not a personal preference, and fixing this definition is the foundation for everything about fairness.

SwMo2c89972292bc3fc49385
1 Std.
raise build integrity against an SLSA-style maturity ladder.

SwMo3e0b5a195e72e53420df
1 Std.
How to locate where climate risk touches the financial statements and test whether it is properly reflected.

SwModead94bd2fda53486681
1 Std.
Gathering and verifying comparable data with AI while refusing to trust fabricated figures or invented citations.

SwMoa9d28fa073530f38bcc5
1 Std.
word items to avoid leading, double-barrelled, and ambiguous questions.

SwMof3d8f1705ce31b9182b7
1 Std.
Consistent terms matter in technical and legal content. A glossary of approved terms steers a model to translate key vocabulary the same way every time.

SwMoa12220f15e0cecb8ba29
1 Std.
Designing a coherent, defensible set of HR metrics from scratch, wired to decisions.

SwMof31ab8784db1f5586851
1 Std.
Drafting clauses that bound which AI systems and purposes a works agreement permits. Tight scope and purpose limits keep the agreement from over-authorising.

SwMo0f225cbf10a15f991045
1 Std.
Mass-dismissal thresholds trigger a formal notification duty that has to be applied precisely.

SwMob8dc5abb8cce2bd85b92
1 Std.
Deriving and applying surcharge percentages and machine-hour rates to load overhead onto products. The choice of rate base drives how fairly costs are spread.

SwMoaa8d694702e22b0be7cd
1 Std.
Running a buy-side research workflow with disciplined verification so AI-generated findings never enter the analysis unchecked.

SwMoaf24c03331dc047be712
1 Std.
Founders often wear owner, manager, and director hats at once, breeding overlapping interests. Handling these conflicts keeps early governance functional.

SwMob6dd2551861ab0119079
1 Std.
combine several data stores in one system, each for what it does best.

SwMoa1353b5f3c0a7e7949a5
1 Std.
Trying an AI feature out quickly and improving it in small steps before committing to a full build. Fast iteration finds what works while changes are still cheap.

SwMo29b5d15f57fe96ef0389
1 Std.
The governing record is distinct from the reports and caches generated from it. Keeping that separation clear prevents derived data from being mistaken for the source.

SwMo2c7ce2c0b4db7f339f60
1 Std.
Covering the ESRS environmental standards beyond climate, spanning pollution, water and marine resources, biodiversity, and the circular economy. Breadth across four topics is the challenge.

SwMo7752169f9399629721a7
1 Std.
Accounting for emission allowances that are purchased or granted under an emissions trading scheme, where recognition and measurement guidance is famously unsettled. Policy choice drives very different results.

SwMof534f9f9f66eb6c88e0c
1 Std.
recognise signals of undisclosed AI-generated or fabricated submissions.

SwMo5842245dfb1845be35e5
1 Std.
The NIST AI Risk Management Framework is a voluntary US framework for identifying and managing AI risk. Its influence comes from adoption, not legal force.

SwMo973ad34d71362be8b2e7
1 Std.
choose a methodology that actually answers the research question, using AI as a challenge partner.

SwMocae33a33c963436001f6
1 Std.
Managing conditions, clearances, and the gap between signing and completion so nothing derails a signed deal.

SwMoff791c3e7020f39e0da0
1 Std.
Reasoning about W&I insurance in a transaction and when transferring warranty risk to an insurer serves the deal.

SwMo39a366c4baf99ead8fd2
1 Std.
prepare a state representative for supervisory-board duties.

SwMo5b15c2cc41cd9071538d
1 Std.
Building governance in from the start is cheaper and safer than retrofitting controls after a system is live. This posture reframes compliance as design, not afterthought.

SwMo5d7b9954f138abce2fb1
1 Std.
assemble and maintain a complete register of models in use, including embedded, spreadsheet, and end-user-computed ones.

SwMo4f49530a256fafe1b364
1 Std.
Structuring a make-or-buy analysis with AI-assisted costing, comparing internal build against external purchase on a like basis.

SwMo8b80b0b2db2947b3728a
1 Std.
Testing journal entries for manipulation indicators across the full population. Full-population JET is a core forensic-accounting method.

SwMo74279c5a53d0d325a38d
1 Std.
Application items set a realistic scenario and ask the learner to act on it, measuring transfer of skill rather than isolated recall.

SwMo903e2865a69bb4e90c4d
1 Std.
Wasp is the Layer 2 committee that executes and verifies application logic above the base ledger. Its role explains where computation happens in the stack.

SwMo160d9a599e74d4533c68
1 Std.
Exposing a change to a slice of traffic first limits the damage if it fails. Blue-green and canary patterns make releases progressive rather than all-or-nothing.

SwMo60f0d099da9c9f6a845e
1 Std.
Map node operation onto recognised security and distributed-ledger criteria, and evidence each item.

SwMo8413067440be02f3b254
1 Std.
A supervisory board needs model risk explained in terms it can act on, not in technical jargon. Translating it well enables real oversight.

SwMoa36781006e1283174296
1 Std.
Riding a current audio or format trend gets reach, but keeping your own message intact is what stops the clip from feeling derivative.

SwMo6178aa85d260ececacc8
1 Std.
delete data reliably by destroying the keys that unlock it.

SwMo004d9ec9a59e48377d98
1 Std.
How to build and read the unit economics of a product or subscription, from contribution per unit to payback and lifetime value. It tells you whether growth pays for itself.

SwMo83536b49cd659703ae48
1 Std.
Explain what the P&L attribution test checks and why a desk can fail it.

SwMoa247078965fe487dd6e9
1 Std.
Generating video means producing many coherent frames over time, a far harder problem than a single image. Knowing what is involved sets realistic expectations for the technology today.

SwMo42308ac29123e7d14bfe
1 Std.
Separating steering metrics from reporting clutter and pruning a bloated KPI catalogue down to what drives action.

SwMob8d4b43f06b0c5792230
1 Std.
Judging whether work was written by AI is unreliable, so any judgement must weigh weak evidence carefully and respect the real limits of detection.

SwMoc75ed684aae4a83914a5
1 Std.
Weigh crypto-shredding and off-ledger payloads against both the data-protection test and the evidentiary-validity test.

SwMo3d85cc2e89bd2276c957
1 Std.
Tag-along rights let minority holders join a sale; drag-along rights let majority holders force one. Designing them well makes an exit workable for all sides.

SwMod09ffdeda42d7e59a06a
1 Std.
Redundant and diverse channels are arranged so that a single AI fault cannot cause harm. Designing them is a classic safety technique adapted to AI.

SwMobfa3859461eccaecdc6e
1 Std.
apply the standard that related parties should price as unrelated ones would.

SwMo432be16da31b7158b8b6
1 Std.
locate the decisions a human must own.

SwMo81691947e84f18bc9f77
1 Std.
Costs and revenues belong in the period they relate to, not the period they are paid. Identifying and computing accruals and prepayments from contracts and invoices puts each item in the right period.

SwMobfd5c72e3ff2bd4ddba0
1 Std.
A defined gate lets a new AI use be reviewed for risk, data, and fit before it goes live. The workflow makes adoption deliberate rather than accidental.

SwMo760cba28c767faaaa6e7
1 Std.
The point of an early experiment is to buy the most learning for the least time and money. Good design isolates the one assumption that matters.

SwMo9b2ac1b17036fe8b2b16
1 Std.
tie each claim back to where it appears in the source.

SwMocb665932adab0967620e
1 Std.
assemble a document from approved clauses and matter variables.

SwMod6df611592536b47bcc6
1 Std.
apply Swiss board duties to a governance decision with AI support.

SwMoa2810298bb559cce65ee
1 Std.
Comparing openings and covers in a controlled way to learn what genuinely works.

SwMo7236c6160b3c98ce1048
1 Std.
explain what a cryptographic hash guarantees for an AI artifact and where it fails.

SwMo9337eeaa25063981aaed
1 Std.
favour models a clinician can inspect and reason about.

SwMoc21522de7e3ae3b906bc
1 Std.
Staff are entitled to know which factors an AI appraisal tool weighs, which sets the transparency an employer must provide.

SwMo0e9efacba18d2b545823
1 Std.
A model only knows what existed in its training data up to a cutoff date, so it cannot answer about anything newer on its own. This shapes when you can trust it for current facts.

SwMo8af94f429a8a26744566
1 Std.
Physics-informed learning constrains a model with physical laws, improving reliability and cutting the data needed. It is how learning stays faithful in data-scarce engineering settings.

SwMo42e10a75e343d37c930d
1 Std.
issue and check tamper-evident credentials against a ledger.

SwMo0bb122c9f0b74eb593b5
1 Std.
A DAG has no single chain to define order, so agreement on sequence and settlement works differently. Understanding it explains when an entry counts as done.

SwMoe21fb29d2452bec2de4d
1 Std.
remove nuisance variation to sharpen an experiment.

SwMoc007d4fddf2ea769e001
1 Std.
Building the reporting timetable for a group as the CSRD phases in across entity types and years. Sequencing first-time reporting across subsidiaries is the planning task.

SwMoe293f32e25764d1c2634
1 Std.
Early customers who co-shape the product are worth more than passive buyers. Recruiting design partners trades polish for influence.

SwMo2cfcfab1ab74f9727675
1 Std.
model significant business occurrences as first-class events.

SwMo1d0c81061172869c8c76
1 Std.
Getting ready for debt and banking conversations on the bank's terms, understanding what lenders weigh.

SwMoa705d405757f60f0af6e
1 Std.
Distributed systems break in ways a single machine never does: partial failures, partitions, and races. Anticipating these modes is central to sound design.

SwMo51ee96e43d575de7b03c
1 Std.
Governing a compliance management system across a holding and its subsidiaries with consistent standards.

SwMo9811c95f02b161df1304
1 Std.
define the fields and value types an answer must contain.

SwMo47ea7b236cd1f226bdd8
1 Std.
An interim leader parachuted into a distressed company needs a clear, bounded mandate, and framing it well sets up everything that follows.

SwMod27b67abd98ade37efc4
1 Std.
How to quantify what it costs to serve a segment and reprice or reshape the offer accordingly. Serving cost often swamps the headline product margin.

SwMob8c980f2140b5d51e2e7
1 Std.
handle scope change without letting the system drift.

SwMob4767e347686034d8be2
1 Std.
A ledger is run by participants with distinct roles: nodes, validators, and the network that connects them. Naming who does what is the first map of the system.

SwMo668e925d6dedc212d221
1 Std.
When AI drives a collaborative robot, speed-and-separation and power-and-force limits from the safety standards must still hold. Preserving them is what keeps a shared human workspace safe.

SwMo232f93963309180ab584
1 Std.
Connecting income statement, balance sheet, and cash flow so the model balances and cash ties out every period.

SwMo9e398b8eccf53ed0ccce
1 Std.
Building ethical review into routine people decisions rather than treating it as an afterthought.

SwMo9ef05964910f438c4c17
1 Std.
Checking and cleaning untrusted input before it reaches a model. Validation blocks malformed or hostile content at the door.

SwMo0dd0d6d4150fbae34059
1 Std.
Aggressive revenue recognition and capitalisation choices inflate reported results; spotting the red flags protects a buyer from paying for illusory profit.

SwModee9768c64435d154bfe
1 Std.
distinguish clinical, genetic, imaging, claims, and wearable data and their sensitivities.

SwMoa3f7a1a3552c0cfcbdae
1 Std.
The first hires and the norms around them set a venture's working culture. Early team-building compounds for good or ill.

SwMo9bd93b65682834a2b261
1 Std.
Sort proposed AI use cases by risk and route each to the right control path.

SwMo4e0182ca144f9002b620
1 Std.
Early prices must earn both revenue and learning about what buyers value. They are experiments as much as transactions.

SwMo90fed20734341fcf2c74
1 Std.
How to apply the limited-assurance standard to ESRS disclosures and know exactly what evidence it demands.

SwMoe1ab5b06d57efbedd442
1 Std.
judge which workloads are ready to move and in what order.

SwMo5c8be9bd66563b4d32cd
1 Std.
Collecting and validating ESG data from upstream suppliers and downstream users where a company lacks direct measurement. Data quality falls off fast once you leave the company's own boundary.

SwMo20a4a892dfad9996456f
1 Std.
Seeds and variation controls let you reproduce a result exactly or diverge from it on purpose.

SwMofe6fbb331928bd9e8f49
1 Std.
Take a model from concept to a system whose behaviour can be audited.

SwMo6ecc64ef805a0c3e51fc
1 Std.
Gathering evidence that CMS controls actually operated effectively across a period, using AI to test control execution. Effectiveness is the deepest assurance PS 980 offers.

SwMod90ab8913422d6ecd2c7
1 Std.
report variance, standard deviation, range, and interquartile range and say which fits the data.

SwMoc23ad2e8a0d64eac30d2
1 Std.
A good item measures exactly one intended outcome and nothing else, so a correct answer means the learner has the skill the outcome names rather than an unrelated one.

SwMo358ae11c5c1cf309f653
1 Std.
Plan an exit and contingency so a supervised firm is not trapped by a vendor.

SwMo3b665974e6e288bc6114
1 Std.
Produce a coverage map from an AI use case to the specific MaRisk provisions it must satisfy.

SwMoc7b659b1b6471943d184
1 Std.
A verifiable certificate has properties that let anyone confirm it is genuine and unaltered. Identifying them separates real verifiability from mere claims.

SwMo20e89e1a7fc82d572fa1
1 Std.
Assembling the social disclosures under ESRS S1 to S4, from a company's own workforce to workers and communities across its value chain. Reaching value-chain data is the hard part.

SwMoc60480326033f7e2ae9f
1 Std.
apply the statistical tools behind Six Sigma improvement.

SwMoc78a2e6ef60d094f6122
1 Std.
record who touched which data and when.

SwMo60fea6316ee8cdccbf22
1 Std.
Testing inventory quantities, costing, and write-downs to net realisable value using data analytics.

SwMof52fd770d011a499c9ed
1 Std.
The technical file must trace where a system's data came from, how it was prepared, and how it is governed.

SwMo919ed68b336f54c79158
1 Std.
The classic mechatronic sense-decide-actuate loop maps onto perception, inference, and actuation once a learned component is added.

SwMoe570d74b3a439eb390e5
1 Std.
explain why fluent, confident output can still be wrong.

SwMo8204b283f57b8afcbc0a
1 Std.
An asset carried above its recoverable amount must be written down. Building and checking a value-in-use calculation tests whether an impairment is needed and how large it is.

SwMo8c5a445fdcb57e177beb
1 Std.
Reasoning about a competitive sale process from the buyer’s seat, where price, timing, and behaviour all interact.

SwMofa0b40c2ae33dac18ac1
1 Std.
stop training data from resurfacing in model outputs.

SwMo0cb93cd79179c93dd827
1 Std.
Why permanent AI observation is harder to justify than targeted, occasion-based checks. Continuous monitoring faces a steeper proportionality bar.

SwMo2d6e3d580d033ff7fd70
1 Std.
Setting a dependable rhythm of investor touchpoints and holding to it so the market learns when and how the company communicates.

SwMofaab809fefe0317a9cd2
1 Std.
apply the DKI-standard hospital risk framework.

SwMo412dc6e3c3762ab91007
1 Std.
Reading an item characteristic curve, where its position along the ability axis signals difficulty and its steepness signals discrimination. The curve is how a single item's behaviour is pictured.

SwMo2e044ac94d0d95d11e08
1 Std.
Building anticipation content in the run-up to a product or content drop.

SwMod7392bcc4b80221ffb15
1 Std.
An embedding represents meaning as a vector of numbers, so software can compute with words, images, or other items.

SwMo017db5070c8d9e41616f
1 Std.
apply audit procedures to the administration's own AI tools and their decisions.

SwMoc36e60ff0dadcc92247c
1 Std.
use AI to prioritise, track, and allocate legal matters across a team.

SwMoa748a47ce6a5a4df1327
1 Std.
trace a request as it crosses many services.

SwMoa867f54568dce7c286cf
1 Std.
Testing for over-indebtedness under the applicable standard determines whether a company is legally insolvent, a judgement with direct liability consequences.

SwMo77eddf5b5f5880f228fc
1 Std.
Building a set of past deals and reading the control premium implied in the prices actually paid.

SwMo77a432db836479a0dff6
1 Std.
A permissioned ledger admits only known validators rather than anyone. That restriction is what makes it suitable for regulated settings.

SwMo818f603d2912f80d2603
1 Std.
check whether an organisation meets and keeps its charitable-status conditions.

SwMo24525710db1ec0598447
1 Std.
Building the cohort model and curriculum of an accelerator so that peer dynamics and content together move ventures forward.

SwMoec6d6419e632213401f5
1 Std.
An AI inventory records every AI system an organisation actually uses, the starting point for governing any of them. You cannot manage what you have not listed.

SwMo9e5235c219fae8115cea
1 Std.
Mining a comment section to surface the next post's topic from what the audience asks.

SwMoafc969a18596e12d40ae
1 Std.
state what data a system needs, in what quality, and from where.

SwMo93b8233666df2c127acc
1 Std.
Audio models synthesise speech and sound by predicting the waveform or its features from text or other input. Understanding this clarifies what synthetic voices can and cannot do.

SwMoe93ddece896a8996ddd9
1 Std.
Organisational knowledge is only useful when it can be found, trusted, and reused. Structuring it well is what turns scattered information into an asset.

SwMo44fb405c5569a477a264
1 Std.
How to redesign a finance process for automation while keeping its controls intact. Automating a weak process just makes the weakness faster.

SwMo6ef7176b236edbdacaca
1 Std.
Assigning a customer risk rating from KYC data and explaining the drivers behind it. The rating governs how much scrutiny a relationship then receives.

SwMo9aca5d0c5f30181d624a
1 Std.
combine live, digital, and immersive learning.

SwMo67b5f72e7f8ac9fea707
1 Std.
Respecting the ongoing interests of performers and narrators whose voice or face helped train a model. Their contribution can carry residual claims even after the recording.

SwMo308f28fb983af39d48ab
1 Std.
Identifying enquiries such as legal, medical, financial, or safety questions that must go to a qualified human. Knowing the limit is what keeps AI assistance responsible.

SwMo980503e92061b6c8254e
6 Lektionen · 7 Zertifikate
6 Std. · Lernpunkte: 96
Verstehen Sie, was KI, maschinelles Lernen und generative KI wirklich sind, in klarer Sprache und ohne technische Vorkenntnisse.

SwMoa9411c55ee4c73311f1a
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 66
Setzen Sie KI für Ihre Korrespondenz, wiederkehrende Aufgaben und die alltäglichen Werkzeuge ein, die Sie bereits nutzen, um schneller echte Ergebnisse zu erzielen.

SwMoe3a2c7cf15b46df2bc59
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 51
Entwerfen Sie Texte, erzeugen Sie Ihr erstes Bild und verfeinern Sie beides auf professionelles Niveau, mit KI-Werkzeugen, die Sie noch heute nutzen können.

SwMod92ebb82b0e4e45199e6
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 66
Sehen Sie, was im Inneren eines Chat-Assistenten geschieht: wie Token, Vorhersage und Training zusammenwirken, damit er so flüssig klingt.

SwMoa12d724f423c3fafedad
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 45
Erkennen Sie erfundene Antworten und erfundene Quellen und entwickeln Sie die alltägliche Gewohnheit, zu prüfen, bevor Sie einer Antwort vertrauen.

SwMocc26b3dfd70500c9524d
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 88
Verstehen Sie die ethischen und datenschutzrechtlichen Grenzen von KI und lernen Sie, synthetische Medien zu erkennen, um KI verantwortungsvoll einzusetzen.

SwMoa9878ba62f96064e02d1
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 50
Führen Sie eine produktive erste Sitzung mit einem Assistenten und lernen Sie, klare Prompts zu schreiben, die Ihnen das gewünschte Ergebnis liefern.

SwMoebcf8d0e7c3c609e44d6
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 92
Entwerfen Sie Agenten, geben Sie ihnen Werkzeuge zum Handeln und setzen Sie die Leitplanken für die Punkte, an denen Autonomie erfahrungsgemäss versagt.

SwMod92826b029f74230f45d
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 91
Rufen Sie eine Modell-API auf, verwalten Sie Schlüssel und Streaming und integrieren Sie ein Sprachmodell sauber in eine eigene reale Anwendung.

SwMo025509d1fd359fd9298e
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 117
Entscheiden Sie für Ihre Aufgabe zwischen Prompting, Retrieval und Fine-Tuning und messen Sie anschliessend mit Evaluationen, ob es funktioniert hat.

SwMo71dbdb41424cf4fd404f
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 84
Verstehen Sie Transformer, wie Textgenerierung tatsächlich abläuft und welche Lernverfahren ein Modell prägen.

SwModd4511e5f4ce46e4f1d9
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 73
Beherrschen Sie Reasoning-Prompts, ausgearbeitete Beispiele und wiederverwendbare Vorlagen, die aus einem leistungsfähigen Modell verlässliche Ergebnisse machen.

SwMob1c0b4442fa9b1034a28
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 101
Verankern Sie ein Modell mit Retrieval in Ihren eigenen Quellen und lernen Sie genau, wo eine RAG-Pipeline versagt und wie Sie sie beheben.

SwMo79d4fa07dd96ddfb33d5
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 88
Wählen Sie Open-Weight-Modelle, richten Sie lokale Inferenz ein und wägen Sie die Kompromisse zwischen eigener Hardware und der Cloud ab.

SwMoa3fc78063dff557e0ab6
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 102
Klassifizieren Sie Risiken nach der EU-KI-Verordnung, wenden Sie die auferlegten Betreiberpflichten an und gestalten Sie eine menschliche Aufsicht, die standhält.

SwModa45cc9cc1f4dcade094
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 134
KI in der Wirtschaftsprüfung: Nachweise erheben, Stichproben ziehen und Prüfungen in voller Grundgesamtheit durchführen, ohne an Sorgfalt einzubüssen.

SwMocbf0f865d376e069cf37
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 147
Bewertung und Modellierung mit KI, einschliesslich der Bewertung immaterieller Vermögenswerte, die KI selbst zunehmend mitschaffen hilft.

SwMo8e270eee5cf3466f1e1b
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 62
KI für die Content-Arbeit: Kurzvideos, Personal Branding und Skripte, die weiterhin nach Ihnen klingen und nicht nach einem generischen Modell.

SwMo01b412696bac6963e625
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 117
Analysieren Sie Verträge, stützen Sie Ihre Recherche auf echte Rechtsquellen und weisen Sie erfundene Rechtsprechung zuverlässig zurück, bevor Sie sie zitieren.

SwMofe1197c350cd7514f571
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 118
KI im Steuerrecht: Subsumtion, Umsatzsteuer bei Massentransaktionen und das Aufspüren erfundener Fundstellen, bevor sie in eine Akte gelangen.

SwMo8681cdcaedceff6fe853
3 Lektionen · 4 Zertifikate
3 Std. · Lernpunkte: 119
KI für Verwaltungsräte: die Aufsicht über KI-Systeme auf Verwaltungsratsebene und eine Governance, die Prüfung und Verantwortlichkeit standhält.
Programme erscheinen hier, sobald sie registriert sind.
Hintergrund
Ausbildung und berufliche Praxis, die die Module dieser Person prägen.
Betreut PhD- und DBA-Kandidat:innen auf EQF-8-Niveau und lehrt, wie eine Methode spezifiziert wird, wie ihre Wirkung auf den Unternehmenswert gemessen wird und wie sie verteidigt wird.
Promotionsstudium 2007 bis 2012.
Studium 2008 bis 2010.
M.Sc.
Behandelt, wie eine Architektur dokumentiert, kontrolliert und überprüft wird, damit sie im Nachhinein prüfbar ist.
Arbeitet neben der Lehre als praktizierender Architekt, damit das Material aus Systemen stammt, die im Betrieb laufen.
Unterrichtet Fachleute in Kundenorganisationen; dort wird das Modulmaterial erprobt, bevor es niedergeschrieben wird.
Betreut Promotionsvorhaben im Bereich künstliche Intelligenz.
Leitet die Fakultät Advanced AI Studies.
Forschung
Aktuelle Themen, akademische Betreuung und Review-Arbeit.
Walter Kurz forscht zu regulierten KI-Systemen für Finanzwesen, Hochschulbildung und Energie; zu überprüfbarer KI-Infrastruktur mit Distributed Ledgers, Identitätssicherung und Audit Trails; zu KI-Integration in Unternehmensbewertung, Offenlegung, Risikomanagement und ESG; zu Compliance-Anwendungen für Websites, Finfluencing, Kreditvergabe, Datenzentren und kritische Infrastrukturen; sowie zu KI-Governance mit Hans Jonas Ethik, Ethik im Gesundheitswesen, autonomen wirtschaftlichen Agenten und Modellattribution.
Multi-agentic execution-capable framework with built-in DLT audit trails for financial operations in DACH
Swiss-compliant federated AI DLT network using Nash equilibrium and ESG metrics
Architecture and methodology for vertical-specific AI deployment from a unified core framework
Generic AI framework development under Solvency II and AI Act in Austria and Germany
Valuation, Risk, and Disclosure. Call for Co-Authors, Three-Paper Research Agenda
A milestone-based real-options framework for the AI valuation uncertainty problem
Requirements for AI-supported trading systems under regulatory constraints
Ein konzeptioneller Rahmen aus der Aufsichtspraxis in der Schweiz, Deutschland und Österreich
Ein spezialisiertes Multi-Agenten-Framework für Anlegerschutz in der Schweiz, Deutschland und Österreich
A qualitative study at investment firms and supervisors in Switzerland, Germany and Austria
A methodological and legal framework for pre-judgment and reputational externalities in Switzerland, Germany and Austria
Bargaining-based suitability and context control under the legal framework of Switzerland, Germany and Austria
A design-science proposal for tiered, reusable identity assurance of natural, juridical and machine entities
A hash-anchored distributed-ledger framework for portable identity across jurisdictions
A trust model for decentralised and compliant distributed settlement infrastructure
A distributed-ledger framework for revocable delegated authority under accountable identity
Optimizing pricing strategies in capital goods SMEs: a weighted dynamic corridor approach to cost-plus and value-based pricing
AI affinity and adoption in competitive German organisations
Challenges for critical infrastructure in Germany
With regulatory authority oversight functions, ESG tracking and systemwide non-custodial KYC
Identifying and classifying gender indicators in CV data
Formal models for AI ethics in healthcare
Hans Jonas' ethics as a normative foundation for AI governance