Edureka

Explainable AI (XAI) Specialization

Edureka

Explainable AI (XAI) Specialization

Master Explainable AI Systems.

Learn to Interpret, Validate, and Communicate Machine Learning Decisions

Edureka

Instructor: Edureka

Included with Coursera Plus

Get in-depth knowledge of a subject
Beginner level

Recommended experience

8 weeks to complete
at 5 hours a week
Flexible schedule
Learn at your own pace
Get in-depth knowledge of a subject
Beginner level

Recommended experience

8 weeks to complete
at 5 hours a week
Flexible schedule
Learn at your own pace

What you'll learn

  • Explain core XAI concepts including interpretability, transparency, and post-hoc explanation methods such as SHAP and LIME

  • Apply and evaluate global and local explanation techniques to interpret complex machine learning model behavior

  • Measure explanation quality through fidelity, faithfulness, stability, and robustness assessments

  • Design clear explanation reports and communicate model insights to diverse audiences including executives and regulators

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Taught in English
Recently updated!

May 2026

91%

of learners achieved a positive career outcome

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  • Learn in-demand skills from university and industry experts
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  • Develop a deep understanding of key concepts
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Specialization - 3 course series

Explainable AI for Everyone

Explainable AI for Everyone

Course 1, 9 hours

What you'll learn

  • Explain core Explainable AI concepts, including interpretability, transparency, and model understanding.

  • Apply techniques like SHAP, LIME, and Permutation Importance to interpret model predictions.

  • Analyze model behavior using global and local explanation methods for deeper insights.

  • Evaluate bias, fairness, and trade-offs to build trustworthy and responsible AI systems.

Skills you'll gain

Category: Model Evaluation
Category: Data Visualization
Category: Data Storytelling
Category: Applied Machine Learning
Category: Data Ethics
Category: Machine Learning Methods
Category: Scikit Learn (Machine Learning Library)
Category: Regression Analysis
Category: Debugging
Category: Technical Communication
Category: Stakeholder Analysis
Category: Artificial Intelligence and Machine Learning (AI/ML)
Category: Interactive Data Visualization
Category: Responsible AI
Category: Statistical Methods
Category: Machine Learning
Category: Classification And Regression Tree (CART)
Category: Decision Tree Learning
Category: Feature Engineering
Category: Trustworthiness
Explainability Methods & Evaluation

Explainability Methods & Evaluation

Course 2, 8 hours

What you'll learn

  • Interpret how Shapley values and SHAP methods explain feature contributions in machine learning models.

  • Generate and evaluate counterfactual and contrastive explanations for interpretable AI systems.

  • Measure explanation quality using fidelity, robustness, stability, and attribution evaluation metrics.

  • Test and validate the reliability of explanation methods under perturbations and adversarial conditions.

AI Governance & Regulation

AI Governance & Regulation

Course 3, 8 hours

What you'll learn

  • 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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Instructor

Edureka
Edureka
193 Courses176,966 learners

Offered by

Edureka

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