LearnQuest

Foundations of AI Governance and Responsible Development

LearnQuest

Foundations of AI Governance and Responsible Development

LearnQuest Network

Instructor: LearnQuest Network

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Gain insight into a topic and learn the fundamentals.
Beginner level

Recommended experience

4 hours to complete
Flexible schedule
Learn at your own pace
Gain insight into a topic and learn the fundamentals.
Beginner level

Recommended experience

4 hours to complete
Flexible schedule
Learn at your own pace

What you'll learn

  • Design AI lifecycle governance with checkpoints, roles, and audit-ready workflows.

  • Apply explainability methods (SHAP, LIME) to ensure transparent, compliant AI decisions.

  • Build traceable documentation, versioning systems, and audit-ready AI reports.

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Assessments

3 assignmentsÂą

AI Graded see disclaimer
Taught in English

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There are 3 modules in this course

AI systems move through distinct stages—data acquisition, model training, evaluation, and deployment—but without governance embedded at each stage, critical decisions go undocumented and accountability gaps emerge under regulatory scrutiny. In this module, you examine how to structure AI development as a traceable, governance-integrated pipeline. You map lifecycle stages to governance checkpoints aligned with frameworks like the NIST AI Risk Management Framework and the EU AI Act, and you design responsibility matrices that assign clear ownership for model decisions across technical, risk, and compliance roles. By the end of this module, you will be able to define governance checkpoints for each lifecycle stage and build accountability structures that connect developer work to audit and explainability requirements.

What's included

11 videos2 readings1 assignment

In this module, you will explore the methods and governance practices that make machine learning models explainable and transparent to the people who oversee, audit, and are affected by them. You will examine how post-hoc techniques such as SHAP and LIME assign attribution to individual predictions, and why the distinction between global and local explanations matters for regulated decision-making. You will also examine how raw technical outputs from these methods must be translated into artifacts that satisfy compliance requirements and communicate meaningfully to risk committees, regulators, and business leaders. By the end of this module, you will be able to implement and validate an explainability pipeline, interpret its outputs for diverse audiences, and integrate those outputs into governance and compliance workflows.

What's included

9 videos1 reading1 assignment

In this module, you focus on the documentation practices that make AI systems auditable in real-world corporate environments. You examine how to establish traceability across models, data, and configurations so that any decision can be reconstructed with confidence. You also learn how to structure audit-ready reports that translate technical evidence into governance artifacts aligned with regulatory expectations. These practices are critical when systems are reviewed by internal audit, regulators, or risk committees. By the end of this module, you will be able to design traceable AI documentation systems and produce structured audit reports that support compliance, accountability, and operational decision-making.

What's included

10 videos1 reading1 assignment

Instructor

LearnQuest Network
LearnQuest
204 Courses987,197 learners

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LearnQuest

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