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AI Ethics and Policy Development Course

USD $59.00 USD $249.00Price range: USD $59.00 through USD $249.00

Course Overview

This self-paced course explores the ethical dimensions of AI, focusing on critical issues like privacy, bias, accountability, and policy development. Participants will learn how to create and implement ethical frameworks and policies that guide the responsible use of AI technologies across various sectors.

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Aim

AI Ethics and Policy Development teaches how to design responsible AI policies for real organizations. Learn risk analysis, governance, privacy, fairness, transparency, and compliance-ready documentation.

Program Objectives

  • Ethics Basics: fairness, accountability, transparency, privacy, safety.
  • Risk Thinking: harms, misuse, bias, security, model failure.
  • Policy Writing: scope, roles, rules, approvals, exceptions.
  • Governance: AI lifecycle controls, documentation, audits.
  • Data & Privacy: consent, minimization, retention, access control.
  • Evaluation: testing, red-teaming basics, monitoring and drift.
  • Procurement: vendor checks and third-party risk (intro).
  • Capstone: write an AI policy pack for a use case.

Program Structure

Module 1: Ethics in AI (What Matters)

  • Common harms: discrimination, surveillance, misinformation, unsafe automation.
  • Stakeholders: users, affected groups, operators, regulators.
  • High-risk vs low-risk AI and when to avoid automation.
  • Ethics workflow: identify risk → controls → evidence → review.

Module 2: Policy Foundations

  • Policy vs standards vs SOPs vs guidelines.
  • Define scope: systems covered, data types, model types, vendors.
  • Roles: owner, approver, reviewer, legal, security, product.
  • Decision rules: approvals, exceptions, escalation.

Module 3: Data Governance, Privacy, and Consent

  • Data mapping: sources, sensitivity, access, retention.
  • Privacy controls: minimization, purpose limits, anonymization (intro).
  • Consent and notice basics; handling sensitive data.
  • Security basics: access, logging, incident response (overview).

Module 4: Fairness, Bias, and Human Impact

  • Bias types: data, measurement, selection, labeling.
  • Fairness checks: group metrics, error breakdowns.
  • Human-in-the-loop: when required and how to design it.
  • Impact assessment: who is affected and how.

Module 5: Transparency and Explainability

  • What to disclose: purpose, limits, confidence, sources.
  • Explainability levels: simple models vs black-box models (overview).
  • Documentation: model cards, datasheets, change logs.
  • Communication: user-facing AI notices and disclaimers.

Module 6: Safety, Misuse, and Security

  • Threats: prompt injection, data leakage, jailbreaks (intro), model abuse.
  • Content risks: hallucinations, toxic outputs, sensitive info exposure.
  • Controls: access limits, filtering, rate limits, review workflows.
  • Red-teaming basics and incident playbooks.

Module 7: Compliance and Audit Readiness

  • Compliance mindset: evidence, traceability, accountability.
  • Lifecycle gates: design → build → test → deploy → monitor.
  • Monitoring: drift, performance, complaints, harm signals.
  • Audit pack: approvals, tests, risk register, logs.

Module 8: Policy Pack Building (Templates)

  • AI Use Policy: allowed uses, restricted uses, prohibited uses.
  • Risk Assessment: severity/likelihood, mitigations, owners.
  • Model Governance: testing checklist, release checklist, monitoring plan.
  • Vendor Policy (intro): due diligence questions and contract clauses (overview).

Final Project

  • Choose a use case: HR screening, customer support bot, fraud, healthcare analytics (non-clinical), education.
  • Deliverables: AI policy + risk assessment + governance checklist + transparency notice.
  • Optional: short presentation for leadership review.

Participant Eligibility

  • Policy, legal, compliance, security, product, and AI/ML teams
  • Students and professionals interested in responsible AI
  • No coding required

Program Outcomes

  • Identify AI risks and define practical controls.
  • Write clear AI policies and governance checklists.
  • Design documentation for audits and compliance.
  • Deliver a full AI policy pack as a portfolio artifact.

Program Deliverables

  • e-LMS Access: lessons, case studies, templates.
  • Policy Toolkit: AI use policy template, risk register, model card template, review checklist.
  • Capstone Support: feedback and review.
  • Assessment: certification after capstone submission.
  • e-Certification and e-Marksheet: digital credentials on completion.

Future Career Prospects

  • Responsible AI / Governance Associate
  • AI Risk & Compliance Analyst
  • Policy Analyst (AI/Tech)
  • Trust & Safety Associate

Job Opportunities

  • Tech/IT: AI governance, trust & safety, compliance.
  • Finance: model risk management and fairness checks.
  • Healthcare/Pharma: analytics governance (non-clinical), documentation.
  • Government/NGOs: AI policy programs and standards work.
Variation

E-Lms, Video + E-LMS, Live Lectures + Video + E-Lms

Certification

  • Upon successful completion of the workshop, participants will be awarded a Certificate of Completion, validating their skills and knowledge in advanced AI ethics and regulatory frameworks. This certification can be added to your LinkedIn profile or shared with employers to demonstrate your commitment to ethical AI practices.

Achieve Excellence & Enter the Hall of Fame!

Elevate your research to the next level! Get your groundbreaking work considered for publication in  prestigious Open Access Journal (worth USD 1,000) and Opportunity to join esteemed Centre of Excellence. Network with industry leaders, access ongoing learning opportunities, and potentially earn a place in our coveted 

Hall of Fame.

Achieve excellence and solidify your reputation among the elite!

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