As AI systems become more powerful and embedded across industries, the need for effective governance is no longer optional – it’s essential. This course explores how organisations can ensure that AI tools are not only effective but also safe, fair, and accountable throughout their lifecycle.

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AI Governance
This course is part of AI Foundations for Business Professionals Specialization

Instructor: Matthias Holweg
Included with
Recommended experience
What you'll learn
Apply governance frameworks to ensure AI systems are ethical, transparent, and accountable.
Evaluate risks and implement strategies for trustworthy AI deployment at scale.
Skills you'll gain
- Data Ethics
- Artificial Intelligence
- Risk Management
- Business Risk Management
- Ethical Standards And Conduct
- Business Ethics
- Governance
- Accountability
- Generative AI
- Information Management
- Governance Risk Management and Compliance
- Law, Regulation, and Compliance
- Information Privacy
- Enterprise Risk Management (ERM)
- Data Governance
- Business Leadership
- Artificial Intelligence and Machine Learning (AI/ML)
- Generative AI Agents
- Compliance Management
- Agentic systems
Details to know

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July 2025
5 assignments
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There are 6 modules in this course
AI systems are no longer just technical tools, they are decision-makers, content creators, and agents of influence. In this course, you’ll explore how responsible governance ensures these systems operate safely, ethically, and in alignment with organisational goals. You’ll investigate why AI systems fail, what risks they pose, and how ethical principles can be translated into practical oversight. From bias mitigation to lifecycle monitoring, you’ll learn how to design and implement governance strategies that build trust, reduce harm, and enable sustainable value creation from AI.
What's included
2 readings
This module explores the critical role of ethics in AI deployment, focusing on how values like fairness, accountability, and autonomy influence system design and outcomes. You’ll examine real-world dilemmas and learn how ethical principles can guide responsible decision-making in both public and private sector AI use.
What's included
1 video5 readings1 assignment1 discussion prompt
Even well-intentioned AI systems can fail. When they do, the impact can be widespread and serious. This module explores the technical and organisational reasons behind AI failure, from algorithmic bias and hallucination to overreliance, poor data governance, and blind spots in leadership and oversight.
What's included
2 readings1 assignment6 plugins
This module introduces the Trustworthy AI Cycle, a practical governance framework designed to ensure that AI systems are not just technically robust, but ethically sound and socially aligned. You’ll learn how to turn high-level principles into measurable practices across the AI lifecycle: from risk anticipation and data quality to testing, documentation, and ongoing monitoring.
What's included
1 video1 assignment1 discussion prompt5 plugins
This module explores how to implement AI responsibly within organisational settings, weighing the strategic decision to build or buy against governance, risk, and long-term value. You’ll learn how to embed AI into enterprise risk management, apply guardrails, and use practices like red teaming and the Three Lines of Defence to ensure trust, accountability, and operational readiness.
What's included
1 video5 readings2 assignments5 plugins
This final module brings together everything you’ve learned about ethical foundations, system failures, governance, and implementation strategies. You’ll consolidate your understanding by examining how organisations can align AI deployment with trust, accountability, and long-term value—and reflect on how these lessons apply to a business idea generated by AI.
What's included
4 readings1 peer review
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Instructor

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Saïd Business School, University of Oxford
Saïd Business School, University of Oxford
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Frequently asked questions
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