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Autor Tópico: AI Governance for Teams (No Code) Policies & Risk  (Lida 11 vezes)

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AI Governance for Teams (No Code) Policies & Risk
« em: 06 de Setembro de 2026, 20:45 »

AI Governance for Teams (No Code) Policies & Risk
Published 9/2026
Created by Ashutosh Shashi
MP4 | Video: h264, 1920x1080 | Audio: AAC, 44.1 KHz, 2 Ch
Level: All Levels | Genre: eLearning | Language: English | Duration: 21 Lectures ( 2h 13m ) | Size: 909.6 MB

Build practical AI governance with policies, guardrails, risk controls, and real-world templates for safe GenAI adoption
What you'll learn
⚡ Create an AI governance operating model with roles, approvals, and accountability for GenAI usage across teams.
⚡ Write practical AI policies for acceptable use, data handling, privacy, and intellectual property protection.
⚡ Identify and mitigate GenAI risks (hallucinations, bias, prompt injection, data leakage) using simple guardrails and controls.
⚡ Use ready-to-use templates (risk register, control checklist, rollout plan) to launch and continuously improve AI governance.
Requirements
❗ No coding or AI/ML background is required.
❗ Basic understanding of how your organization uses software, data, and access controls (at a high level).
❗ Helpful (but not required): you have seen or used GenAI tools like ChatGPT or Copilot in daily work.
❗ You should be willing to apply the templates to a real or hypothetical use case (example: internal assistant, customer chatbot, HR workflow).
Description
Generative AI is moving fast, but most teams adopt it without clear rules. That is where problems start: sensitive data leaks into prompts, outputs contain hallucinations or bias, teams copy AI answers into production decisions, and nobody knows who owns the risk. This course gives you a practical, no-code governance playbook that you can apply immediately to build safe, reliable, and compliant AI usage in your organization.
You will learn how to design an AI governance model for real teams: what policies you need, how to define acceptable use, how to classify data, and how to set guardrails that actually work in day-to-day work. We will cover the most common GenAI risks (privacy, security, prompt injection, intellectual property, regulatory exposure, and reputational risk) and how to reduce them with simple controls such as approval workflows, red-teaming checklists, human-in-the-loop review, and clear accountability.
This course is not about coding or building models. It is about making better decisions and setting up practical governance that scales. You will work through realistic case studies (for example: a support chatbot, an internal knowledge assistant, and an AI-enabled hiring workflow) and you will get downloadable templates you can reuse-policy outlines, risk registers, data classification guidance, and an AI rollout checklist.
By the end, you will be able to confidently lead or support GenAI adoption with clarity: what to allow, what to restrict, how to measure risk, and how to continuously improve governance as your AI usage grows.
Who this course is for
⭐ Architects, tech leads, and senior engineers who need a practical governance approach for adopting GenAI safely in products and internal tools.
⭐ Engineering managers and delivery leads who must set rules, approvals, and accountability before teams start using AI at scale.
⭐ Security, risk, and compliance professionals who want to understand GenAI-specific risks (prompt injection, data leakage, IP, bias) and map them to practical controls.
⭐ Product managers and business stakeholders who sponsor AI initiatives and need clarity on what to allow, what to restrict, and how to measure risk and success.
⭐ Anyone responsible for AI adoption in an organization who wants templates, checklists, and a step-by-step playbook rather than theory.
Homepage
Código: [Seleccione]
https://www.udemy.com/course/ai-governance-for-teams-no-code-policies-risk
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