Coursera

Responsible AI, Explainability & Deployment

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Coursera

Responsible AI, Explainability & Deployment

包含在 Coursera Plus

深入了解一个主题并学习基础知识。
中级 等级

推荐体验

2 周 完成
在 10 小时 一周
灵活的计划
自行安排学习进度
深入了解一个主题并学习基础知识。
中级 等级

推荐体验

2 周 完成
在 10 小时 一周
灵活的计划
自行安排学习进度

您将学到什么

  • Apply fairness metrics and bias-mitigation techniques to AI pricing models and document the accuracy trade-offs for enterprise stakeholders.

  • Implement differential-privacy mechanisms and evaluate whether privacy controls preserve the analytical utility required for marketing segmentation.

  • Generate and compare SHAP and LIME explanations for black-box pricing decisions, producing visuals interpretable by non-technical stakeholders.

  • Design and validate a real-time dynamic pricing system with optimization models, automated triggers and compliance-ready guard-rail enforcement.

要了解的详细信息

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April 2026

授课语言:英语(English)

了解顶级公司的员工如何掌握热门技能

Petrobras, TATA, Danone, Capgemini, P&G 和 L'Oreal 的徽标

积累特定领域的专业知识

本课程是 AI-Powered Decision Intelligence: Data to Strategic Insights 专项课程 专项课程的一部分
在注册此课程时,您还会同时注册此专项课程。
  • 向行业专家学习新概念
  • 获得对主题或工具的基础理解
  • 通过实践项目培养工作相关技能
  • 获得可共享的职业证书

该课程共有20个模块

Apply fairness metrics to HR selection models and document observed disparities.

涵盖的内容

1个视频1篇阅读材料1个作业1个非评分实验室

Evaluate mitigation approaches and implement bias reduction strategies with measurable improvements.

涵盖的内容

2个视频2个作业

This module teaches how to detect representation bias in datasets, apply re-sampling strategies such as SMOTE, and assess their impact on model performance across demographic groups.

涵盖的内容

1个视频1篇阅读材料1个作业

Learners will evaluate the impact of bias mitigation techniques on AI system performance and fairness, then communicate results clearly to stakeholders for informed decision making.

涵盖的内容

2个视频1篇阅读材料2个作业1个非评分实验室

Apply differential-privacy noise to query outputs and measure privacy budget consumption (ε - epsilon).

涵盖的内容

1个视频1篇阅读材料1个作业1个非评分实验室

Evaluate whether privacy techniques maintain required analytical accuracy for a marketing segmentation task.

涵盖的内容

2个视频1篇阅读材料1个作业

Analyze a model against GDPR/CCPA requirements, document lawful-basis mapping, and generate an audit report.

涵盖的内容

1个视频1篇阅读材料2个作业

Evaluate compliance gaps and create a remediation roadmap with prioritized actions.

涵盖的内容

1个视频1篇阅读材料3个作业

Apply SHAP values to black-box models and create executive-ready feature importance visualizations.

涵盖的内容

3个视频1篇阅读材料1个作业1个非评分实验室

Evaluate and compare LIME vs SHAP methods using fidelity and stability metrics for systematic explainability assessment.

涵盖的内容

2个视频2篇阅读材料2个作业

Apply counterfactual and surrogate-model explanations while evaluating explanation completeness using fidelity metrics for optimal stakeholder-centered approaches.

涵盖的内容

3个视频1篇阅读材料2个作业1个非评分实验室

This module introduces learners to configuring alerting rules within an AI decision-intelligence platform to detect performance and operational issues. Learners also validate end-to-end data-to-decision latency to ensure timely, reliable, and actionable insights within strict real-time performance thresholds.

涵盖的内容

1个视频1篇阅读材料1个作业1个非评分实验室

This module equips learners to assess AI platform capabilities across usability, scalability, and governance, synthesize findings into a structured scorecard, and communicate evidence-based recommendations effectively to senior leadership.

涵盖的内容

2个视频1个作业1个非评分实验室

This module guides learners to design and implement a real-time Kafka–Spark streaming pipeline that monitors KPIs, detects threshold breaches, and automatically triggers data-driven decisions with low-latency, production-ready reliability.

涵盖的内容

1个视频1篇阅读材料2个作业

This module enables learners to measure and analyze system throughput and end-to-end latency under load, validate performance against defined SLAs, and identify bottlenecks to ensure reliable, scalable, and compliant system operation.

涵盖的内容

2个视频1篇阅读材料2个作业

Learners will apply mixed-integer programming to minimize logistics costs under delivery-time constraints and report savings %.

涵盖的内容

2个视频2篇阅读材料2个作业

Learners will build a price-elasticity model and simulate revenue impact of dynamic-pricing rules, achieving ≥5% projected uplift.

涵盖的内容

1个视频3篇阅读材料2个作业

Learners will evaluate compliance with pre-set pricing guard-rails (floor/ceiling) and adjust rules accordingly.

涵盖的内容

3个视频2篇阅读材料2个作业

Learners will evaluate sensitivity of the optimized plan to demand-forecast errors using a what-if analysis.

涵盖的内容

3个视频1篇阅读材料3个作业

You will design and implement a complete dynamic pricing decision system that integrates ethical AI, privacy compliance, explainability, real-time decision logic, and supply/pricing optimization into a single production-ready deliverable. You apply fairness metrics and differential-privacy techniques to ensure responsible data use, generate SHAP-based explanations for pricing decisions, implement and validate pricing guard-rails, and design real-time trigger logic for automated price updates. The finished system demonstrates the full lifecycle of responsible AI deployment at enterprise scale.

涵盖的内容

4篇阅读材料1个作业

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位教师

Professionals from the Industry
405 门课程58,389 名学生

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常见问题

¹ 本课程的部分作业采用 AI 评分。对于这些作业,将根据 Coursera 隐私声明使用您的数据。