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Responsible AI for Everyone · LearnSpace
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Responsible AI for Everyone

Курс от Edureka
Начальный≈ 8 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

This course introduces the foundations of Responsible AI, helping learners understand how AI systems make decisions, where risks emerge, and how organizations can build trustworthy and accountable AI solutions. The course explores AI fairness, bias, transparency, explainability, accountability, and human oversight through practical examples and hands-on activities. You’ll also examine AI risks, harms, feedback loops, and operational controls used to support responsible AI deployment in real-world systems. By the end of this course, you will be able to: - Explain how AI systems generate predictions and decisions in real-world applications - Identify key Responsible AI principles, including fairness, transparency, accountability, and oversight - Analyze AI risks, harms, and feedback loops across the AI system lifecycle - Evaluate algorithmic bias and fairness trade-offs using practical auditing techniques - Apply transparency and explainability practices using model cards and AI documentation This course is designed for AI practitioners, data professionals, business leaders, governance teams, compliance professionals, and technology learners who want to understand how to build, evaluate, and manage trustworthy AI systems. A basic understanding of AI or machine learning concepts will help maximize your learning experience, though no advanced technical background is required. Learners need a reliable internet connection, a modern web browser, and access to standard productivity and AI learning tools; no specialized hardware is required. Join us to explore Responsible AI and learn how to design, evaluate, and govern AI systems that are fair, transparent, accountable, and trustworthy.

Навыки, которые вы освоите

Responsible AIAccountabilityArtificial IntelligencePandas (Python Package)Governance Risk Management and ComplianceData GovernanceDecision MakingGovernanceModel EvaluationPython ProgrammingRisk MitigationCompliance AuditingData EthicsAuditingRisk AnalysisRisk ManagementAccountability Frameworks

Программа курса

4 модулей · 54 учебных материалов

01AI Systems and Responsible AI Foundations18 материалов

Understanding AI Systems

Specialization VideoВидеоCourse IntroductionВидеоCourse SyllabusЧтениеWhat Is Artificial Intelligence?Видео

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Edureka

Преподаватель курса

Responsible AI for Everyone
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Обучение откроется на Coursera
в новой вкладке

Обучение на Coursera

≈ 8 ч

4 модулей

Язык: Английский

Субтитры: Арабский, Французский, Итальянский, Бразильский португальский, Корейский, Немецкий, Индонезийский, Испанский, Японский

Часть программы вашего университета
How AI Systems Make Predictions and Decisions?Видео
Why AI Risk is Different from Traditional SoftwareВидео
Hands-On: Identifying AI in Business ToolsВидео
Foundations of AI Systems for Responsible AI PractitionersЧтение
Knowledge Check: Understanding AI SystemsЗадание

Fundamentals of Responsible AI

When AI Fails: Real-World Harm Case StudiesВидеоThe Business Case for Responsible AIВидеоCore Principles of Responsible AIВидеоHands-On: AI Bias Detection and ControlВидеоThe Complete Case for Responsible AI: Harms, Value and PrinciplesЧтениеKnowledge Check: Fundamentals of Responsible AIЗадание

Module Wrap-Up and Assessment

Foundations of AI and Responsible AI ReviewDIALOGUEModule Summary: AI Systems and Responsible AI FoundationsЧтениеKnowledge Check: AI Systems and Responsible AI FoundationsЗадание
02AI Fairness and Transparency16 материалов

Understanding AI Bias and Fairness

What Is Algorithmic Bias?ВидеоTypes of AI Bias Across the LifecycleВидеоFrom Bias to Fairness in AI SystemsВидеоFairness Definitions and their Trade-OffsВидеоHands-On: Auditing Bias in an AI Hiring SystemВидеоBias Detection and Fairness Auditing in PracticeЧтениеKnowledge Check: Understanding AI Bias and FairnessЗадание

AI Transparency and Explainability

The AI Black Box ProblemВидеоHow Explainable AI(XAI) Works?ВидеоAI Transparency and Model CardsВидеоHands-On: Auditing AI Models Using Model CardsВидеоAI Transparency and Explainability: Model Cards, XAI & Best PracticesЧтениеKnowledge Check: AI Transparency and ExplainabilityЗадание

Module Wrap-Up and Assessments

Bias, Fairness, and Transparency ReviewDIALOGUEModule Summary: AI Transparency and ExplainabilityЧтениеKnowledge Check: AI Transparency and ExplainabilityЗадание
03AI Risk, Harm, and Accountability15 материалов

Identifying AI Risks and Harms

AI Risk and Real-World ImpactВидеоExploring AI Harm TypesВидеоFeedback Loops and Risk AmplificationВидеоHands-on: AI Harm Mapping in Recruitment SystemsВидеоAI Risk and Harm: Taxonomies, Feedback Loops, and Assessment FrameworksЧтениеKnowledge Check: Identifying AI Risks and HarmЗадание

Responsible AI and Accountability in Practice

Accountability in AI SystemsВидеоHuman Oversight and Decision ControlВидеоResponsible AI Evaluation and ControlsВидеоHands-On: AI Evaluation for Recommendation SystemsВидеоAI Accountability in Practice: Roles, Oversight & Operational ControlsЧтениеKnowledge Check: Responsible AI and Accountability in PracticeЗадание

Module Wrap-Up and Assessment

Risk, Oversight, and Accountability ReviewDIALOGUEModule Summary: AI Risk, Harm, and AccountabilityЧтениеKnowledge Check: AI Risk, Harm, and AccountabilityЗадание
04Course Wrap-up and Assessments5 материалов

Course Wrap-Up and Assessments

Practice Project: Responsible AI AuditЧтениеAI Risk and Accountability SimulationDIALOGUEEnd Course Knowledge Check:ЗаданиеLoan Approval System: Responsible AI EvaluationЗаданиеCourse SummaryВидео