This course introduces the foundational practices required to design, develop, and manage AI systems responsibly in regulated and high-stakes environments. Learners explore how to integrate governance into every stage of the AI lifecycle, ensuring that models are transparent, accountable, and audit-ready from development through deployment and monitoring. The course emphasizes building structured governance checkpoints, defining clear accountability using frameworks like RACI, and aligning technical workflows with regulatory expectations such as the NIST AI Risk Management Framework and the EU AI Act.

Foundations of AI Governance and Responsible Development
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Foundations of AI Governance and Responsible Development
This course is part of Managing AI Systems: Development, Deployment, and Governance Specialization

Instructor: LearnQuest Network
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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.
Skills you'll gain
- Regulatory Requirements
- Risk Management
- Regulatory Compliance
- Compliance Auditing
- Responsible AI
- Internal Auditing
- Model Training
- Accountability Frameworks
- Report Writing
- Accountability
- Data Governance
- Governance Risk Management and Compliance
- MLOps (Machine Learning Operations)
- Audit Working Papers
- Compliance Reporting
- Governance
- Compliance Management
- Auditing
- Technical Communication
Tools you'll learn
Details to know

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May 2026
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