Edureka

Responsible AI 专项课程

Edureka

Responsible AI 专项课程

Build Fair and Trustworthy AI.

Design, Govern, and Deploy AI Systems with Fairness, Transparency, and Accountability

Edureka

位教师:Edureka

包含在 Coursera Plus

深入学习学科知识
初级 等级

推荐体验

8 周 完成
在 5 小时 一周
灵活的计划
自行安排学习进度
深入学习学科知识
初级 等级

推荐体验

8 周 完成
在 5 小时 一周
灵活的计划
自行安排学习进度

您将学到什么

  • Identify, measure, and analyze algorithmic bias and fairness trade-offs in machine learning systems using practical metrics and tools

  • Apply explainability techniques including LIME, SHAP, and counterfactuals to interpret model behavior and communicate findings

  • Design and implement AI governance frameworks, policies, and risk management processes aligned with global regulatory standards

  • Evaluate and manage AI system risks including privacy, adversarial attacks, and feedback loops throughout the ML lifecycle

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授课语言:英语(English)
最近已更新!

May 2026

91%

of learners achieved a positive career outcome

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专业化 - 3门课程系列

Responsible AI for Everyone

Responsible AI for Everyone

第 1 门课程, 小时

您将学到什么

  • Explain Responsible AI concepts, including fairness, transparency, accountability, and oversight.

  • Analyze AI risks, harms, and feedback loops across real-world AI systems.

  • Evaluate algorithmic bias and fairness trade-offs using practical auditing techniques.

  • Apply transparency and explainability practices using model cards and AI documentation.

您将获得的技能

类别:Auditing
类别:Governance
类别:Responsible AI
类别:Artificial Intelligence
类别:Decision Making
类别:Accountability
类别:Risk Mitigation
类别:Model Evaluation
类别:Governance Risk Management and Compliance
类别:Data Governance
类别:Risk Analysis
类别:Data Ethics
类别:Pandas (Python Package)
类别:Compliance Auditing
类别:Accountability Frameworks
类别:Risk Management
类别:Python Programming
Responsible AI in Practice: Fairness, Bias & Explainability

Responsible AI in Practice: Fairness, Bias & Explainability

第 2 门课程, 小时

您将学到什么

  • Explain the core principles of fairness, interpretability, privacy, and accountability in Responsible AI systems.

  • Analyze AI models using fairness metrics, explainability methods, and privacy evaluation techniques.

  • Apply bias mitigation, interpretability, and privacy-preserving methods to improve AI system reliability.

  • Evaluate trade-offs between fairness, privacy, interpretability, and model performance in real-world AI solutions.

AI Governance & Regulation

AI Governance & Regulation

第 3 门课程, 小时

您将学到什么

  • Understand the core principles of AI governance, including roles, frameworks, and regulatory foundations.

  • Analyze AI systems using global governance frameworks to identify risks and compliance requirements.

  • Apply governance practices such as policy design, risk registers, and lifecycle controls in real-world scenarios.

  • Evaluate AI systems through monitoring, auditing, and incident response to ensure responsible and compliant operation.

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位教师

Edureka
Edureka
193 门课程176,966 名学生

提供方

Edureka

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