AI+ Ethics Fundamentals™

Kód kurzu: AC120

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Price of the certification exam is included in the price of the course.

Formerly known as AI+ Ethics™

Navigate the Intersection of AI and Ethics in Business Landscape

  • Responsible AI Focus: Master ethical AI use aligned with business and societal values
  • Risk Mitigation: Learn to manage compliance, transparency, and AI decision-making
  • Strategic Guidance: Integrate ethical practices into AI adoption and leadership
  • Reputation Builder: Build organisational trust and credibility in AI deployments

 

Akční cena
140 EUR

172 EUR s DPH

Výber termínov

Odborní
certifikovaní lektori

Mezinárodne
uznávané certifikácie

Široká ponuka technických
a soft skills kurzov

Skvelý zákaznicky
servis

Prispôsobenie kurzov
presne na mieru

Termíny kurzov

Počiatočný dátum: Na vyžiadanie

Forma: Self-Paced

Dĺžka kurzu: 8 hodín

Jazyk: en

Cena bez DPH: 140 EUR Akční cena

Registrovať

Počiatočný
dátum
Miesto
konania
Forma Dĺžka
kurzu
Jazyk Cena bez DPH
Na vyžiadanie Self-Paced 8 hodín en A 140 EUR Registrovať
G Garantovaný kurz
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Popis kurzu

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In-Depth Ethical Understanding:

Understand ethical considerations and social impacts of AI for responsible decision-making.

Bias Mitigation and Fairness:

Learn strategies to identify and prevent biases in AI systems, ensuring fairness and transparency.

Privacy and Security Assurance:

Explore strategies to safeguard privacy and secure AI systems and data.

Legal and Regulatory Compliance:

Understand global AI regulations to ensure compliance with legal and ethical standards.

  • AI4People (Atomium – European Institute for Science, Media, and Democracy)
  • IBM – AI Fairness 360
  • IBM – AI Explainability 360
  • European Commission High-Level Expert Group on AI

Cieľová skupina

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Ethics Professionals:Enhance your expertise in AI ethics to guide responsible AI deployment. 

AI & Data Enthusiasts:Learn how to apply ethical frameworks in AI decision-making processes. 

Compliance Officers:Ensure AI technologies comply with legal and ethical standards to mitigate risks. 

Technology Leaders:Drive ethical AI strategies and lead responsible AI initiatives within organizations. 

Students & New Graduates:Gain a competitive edge in the rapidly growing field of AI ethics. 

Štruktúra kurzu

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Course Overview

Module 1: Foundations of AI Ethics and Responsible AI

  • 1.1 Understanding AI in a Modern Ethics Context
  • 1.2 The Societal Impact of AI Technologies
  • 1.3 Core Principles and Stakeholders
  • 1.4 Building AI Literacy for the Workplace
  • 1.5 Human Rights, Democracy, and AI Ethics
  • 1.6 Case Studies

Module 2: Bias, Fairness, and Inclusion in AI

  • 2.1 Where Bias Enters AI Systems
  • 2.2 Fairness Concepts and Practical Evaluation
  • 2.3 Mitigation and Inclusive Design
  • 2.4 Applied Fairness Cases
  • 2.5 Case Studies

Module 3: Transparency, Explainability, and Documentation

  • 3.1 Why Transparency Matters
  • 3.2 Explainability Methods and Documentation Standards
  • 3.3 Communicating AI Decisions Responsibly
  • 3.4 Transparency, Documentation, and Governance Practices
  • 3.5 Case Studies

Module 4: Privacy, Security, and AI Data Governance

  • 4.1 Privacy Principles in AI
  • 4.2 AI Data Governance and Data Quality
  • 4.3 Security Risks in AI Systems
  • 4.4 Privacy-Preserving AI Techniques
  • 4.5 Content Authenticity, Provenance, and Trust
  • 4.6 Real World Case Studies

Module 5: Accountability, Oversight, and AI Governance

  • 5.1 Accountability Across the AI Lifecycle
  • 5.2 Human Oversight and Control
  • 5.3 Risk Management and Assurance
  • 5.4 Red Teaming and Safety Testing
  • 5.5 Governance Operating Model
  • 5.6 Grievance and Remedy Processes
  • 5.7 System Retirement and Decommissioning
  • 5.8 Applied Case Studies

Module 6: Legal, Regulatory, and Standards Landscape

  • 6.1 International Principles and Treaties
  • 6.2 Management and Technical Standards
  • 6.3 Binding Regional Laws
  • 6.4 National Guidance and Voluntary Frameworks
  • 6.5 Sector-Specific and Cross-Border Compliance
  • 6.6 Case Studies

Module 7: Generative AI, Agentic AI, and Responsible Deployment

  • 7.1 How Modern Generative and Agentic AI Systems Work
  • 7.2 New Risks Introduced by Generative AI
  • 7.3 Agentic AI Risks and Governance
  • 7.4 Evaluation and Safe Deployment
  • 7.5 Responsible Use Cases and Boundaries

Module 8: Capstone – AI Ethics Impact Assessment and Governance Plan

  • 8.1 Select an AI Use Case
  • 8.2 Perform an Ethics and Risk Assessment
  • 8.3 Develop an AI Governance Package Using the NIST AI RMF
  • 8.4 Final Capstone Deliverable
  • 8.5 Review and Reflection

Optional Module: AI Agents for Ethics

  • 1.1 What Are AI Agents?
  • 1.2 Applications and Trends of AI Agents for Ethics
  • 1.3 How Does an AI Agent Work?
  • 1.4 Core Characteristics of AI Agents
  • 1.5 Importance of AI Agents
  • 1.6 Types of AI Agents

Predpokladané znalosti

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Basic knowledge of artificial intelligence, machine learning concepts, Python familiarity, fundamental AI/ML concepts

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Certifikácie

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50 questions, 70% passing, 90 minutes, online proctored exam