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AI Ethics & Responsible AI – Fairness, Bias, and Governance
Highest Rated
Rating: 5.0 out of 5(18 ratings)
34 students

AI Ethics & Responsible AI – Fairness, Bias, and Governance

Understand ethical risks in AI and learn how to build fair, transparent, and responsible AI systems
Created byAlisha Mukhtar
Last updated 2/2026
English
English [Auto],

What you'll learn

  • Strengthen trust, transparency, and responsibility in AI-driven solutions
  • Build awareness of ethical decision-making in AI design and deployment
  • Protect data privacy and understand ethical data usage in AI systems
  • Learn how organizations implement AI governance and accountability frameworks
  • Understand how AI systems can reinforce stereotypes and social harm
  • Recognize and mitigate bias and discrimination in AI models
  • Apply the core pillars of ethical AI, including fairness and accountability
  • Understand the negative impacts of irresponsible AI on individuals, businesses, and society
  • Analyze real-world AI failures related to bias, discrimination, and stereotyping
  • Identify ethical risks and challenges in modern AI systems
  • Understand the fundamentals of AI ethics and responsible AI

Course content

1 section12 lectures1h 4m total length
  • Introduction2:08
  • Defining and Understanding AI Ethics2:34
  • Navigating the Ethical Landscape of Artificial Intelligence3:37
  • Key Ethical Concerns in AI4:43
  • The Negative Impacts of Irresponsible AI4:02
  • The Business Case for Responsible AI8:12
  • Addressing AI Bias Lessons from a Flawed Recruitment System6:20

    Explore how a biased recruitment AI learned from male-dominated data to perpetuate gender inequality, and learn how diverse data, fairness audits, and human oversight promote fair, transparent hiring.

  • Addressing AI Image Generator Stereotypes A Case Study3:55
  • The Pillars of Ethical AI Fairness4:55
  • Ensuring Responsible AI through Accountability and Governance7:49
  • Mitigating Harmful Bias and Discrimination in AI5:46
  • Protecting Privacy in the Age of AI10:14

Requirements

  • Willingness to think critically about technology and ethics
  • No prior AI or technical background required
  • Basic curiosity about AI and its impact on society

Description

AI Ethics & Responsible AI – Fairness, Bias, and Governance Course

Artificial Intelligence is transforming industries — but irresponsible AI can cause serious harm, including bias, discrimination, privacy violations, and loss of trust.

This course provides a clear, practical, and real-world understanding of AI ethics and responsible AI practices. You will learn how ethical failures happen in AI systems, how they impact businesses and society, and most importantly, how to prevent them.

Designed for beginners, professionals, and decision-makers, this course explains complex ethical concepts in a simple and structured way — using real case studies, including flawed recruitment systems and biased image generators.

What You Will Learn (Learning Outcomes)

By the end of this course, you will be able to:

  • Understand the fundamentals of AI ethics and responsible AI

  • Identify ethical risks and challenges in modern AI systems

  • Analyse real-world AI failures related to bias, discrimination, and stereotyping

  • Understand the negative impacts of irresponsible AI on individuals, businesses, and society

  • Apply the core pillars of ethical AI, including fairness and accountability

  • Recognize and mitigate bias and discrimination in AI models

  • Understand how AI systems can reinforce stereotypes and social harm

  • Learn how organizations implement AI governance and accountability frameworks

  • Protect data privacy and understand ethical data usage in AI systems

  • Build awareness of ethical decision-making in AI design and deployment

  • Strengthen trust, transparency, and responsibility in AI-driven solutions

Why Ethical & Responsible AI Matters

As AI adoption grows, organizations face increasing pressure from:

  • Regulators and compliance requirements

  • Customers demanding transparency and fairness

  • Ethical risks that can damage brand reputation

  • Legal and social consequences of biased AI decisions

This course explains the business case for responsible AI, showing how ethical AI practices reduce risk, improve trust, and create sustainable AI solutions.

Who This Course Is For

  • Beginners curious about AI ethics and responsible AI

  • Data scientists, AI engineers, and ML practitioners

  • Product managers and business leaders working with AI

  • QA, compliance, and governance professionals

  • Students and professionals interested in ethical technology

  • Anyone who wants to understand the social impact of AI

Requirements

  • No prior AI or technical background required

  • Basic curiosity about AI and its impact on society

  • Willingness to think critically about technology and ethics

Why Enrol in This Course?

Simple explanations of complex ethical concepts
Real-world case studies of AI failures and lessons learned
Practical understanding of fairness, bias, governance, and privacy
Industry-relevant knowledge for modern AI roles

Who this course is for:

  • Beginners curious about AI ethics and responsible AI
  • Data scientists, AI engineers, and ML practitioners
  • Anyone who wants to understand the social impact of AI
  • Students and professionals interested in ethical technology
  • QA, compliance, and governance professionals
  • Product managers and business leaders working with AI