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In diesem Kurs gibt es 3 Module
This course teaches you how to assess and improve the quality, safety, and business impact of the AI agents you create. You will learn straightforward techniques for evaluating outputs, measuring reliability, and reducing hallucinations and errors. The course covers beginner friendly security, privacy, and governance practices so your agents align with organizational policies and regulations. You will design simple experiments to compare processes with and without agents, quantify time savings, and communicate results to managers. Finally, you will explore how to maintain, document, and responsibly scale your agents without creating unmanageable “agent sprawl.” By the end, you will be able to define clear output requirements, evaluate your agents systematically, and make evidence based decisions about when and how to deploy them.
When your AI agent is handling real tickets, drafting customer replies, or summarizing account histories, "it seems fine" is not a quality standard you can defend to a stakeholder or a regulator. This module gives you the practical tools to change that. You will learn to translate vague expectations into written acceptance criteria, build small evaluation sets that anchor quality conversations with your team, and design rubrics that make manual review consistent and repeatable. You will then run structured spot-checks, use logging and tagging to surface recurring failure patterns, and apply those findings to iteratively improve your prompts and workflows. By the end of this module, you will be able to define, measure, and systematically improve the output quality of an AI agent in your own work context.
Das ist alles enthalten
23 Videos3 Lektüren1 Aufgabe
Infos zu Modulinhalt anzeigen
23 Videos•Insgesamt 58 Minuten
Evaluating AI Agent Outputs•2 Minuten
From Experimentation to Accountability: Evaluating, Governing, and Scaling AI Agents•2 Minuten
When "Good Enough" Isn't Written Down•3 Minuten
Recognizing the Missing Criteria Problem•2 Minuten
The Building Blocks of Evaluation•3 Minuten
Acceptance Criteria, Rubrics, and Evaluation Sets•3 Minuten
From Expectation to Evidence•3 Minuten
Building Your First Evaluation Framework•3 Minuten
Where This Matters Most•3 Minuten
High-Stakes Contexts and Immediate Application•3 Minuten
The Hidden Risk of Unmonitored AI Agent Performance•2 Minuten
Common Misconceptions About Evaluating AI Agent Performance•2 Minuten
Recognizing the Need for Systematic AI Agent Evaluation•1 Minute
Core Concepts in AI Agent Evaluation•4 Minuten
Common Knowledge Gaps in AI Agent Evaluation•2 Minuten
Translating Evaluation Principles into Operational Practice•2 Minuten
Building a Reliable Evaluation Framework for AI Agents•5 Minuten
Common Errors in the Evaluation Process•2 Minuten
What Do Expert Practitioners Do Differently?•2 Minuten
High-Impact Contexts for AI Agent Evaluation•3 Minuten
How Experienced Practitioners Approach AI Agent Evaluation•2 Minuten
Conducting a Structured Spot-Check of AI Agent Outputs•2 Minuten
From Trusting AI to Proving It: Managing Risk, Quality, and Impact•1 Minute
3 Lektüren•Insgesamt 30 Minuten
Course Syllabus•10 Minuten
Apply Clear Output Standards to Evaluate AI Agent Performance — Key Takeaways•10 Minuten
Execute Structured Evaluations to Measure and Improve AI Agent Performance — Key Takeaways•10 Minuten
1 Aufgabe•Insgesamt 30 Minuten
Evaluating AI Agent Outputs•30 Minuten
Safety, Security, and Governance for Beginners
Modul 2•1 Stunde abzuschließen
Moduldetails
This module takes you from evaluating agent outputs to governing the conditions under which those outputs are safe to produce and act on. You will learn to recognize the AI risks — hallucination, bias, data exposure, and policy violations — that most commonly surface in production agent deployments, and to use a risk-based framework to decide which controls are proportionate to your context. In the second lesson, you will apply data classification, access controls, and privacy-by-design thinking to agents that touch sensitive customer, employee, or financial information. By the end of this module, you will be able to assess risk in a real deployment, implement targeted mitigations, and produce the documentation your organization's legal, compliance, and security stakeholders increasingly require before approving broader rollout.
Das ist alles enthalten
17 Videos2 Lektüren1 Aufgabe
Infos zu Modulinhalt anzeigen
17 Videos•Insgesamt 46 Minuten
Safety, Security, and Governance for Beginners•3 Minuten
See the Governance Gap Before It Becomes a Crisis•3 Minuten
Name the Problem You Have Been Looking Past•3 Minuten
Map the Risks Before You Configure the Controls•3 Minuten
Match the Governance to the Stakes, Not to the Tool•3 Minuten
Build the Foundation: Map Context, Assess Risk, Configure Controls•3 Minuten
Test for Failure, Then Sustain the Watch•3 Minuten
Govern Where It Hurts Most: Customer Data and Regulated Workflows•3 Minuten
Start the Governance Record You Don't Have Yet•3 Minuten
Spot the Data Problem Hidden in Plain Sight•3 Minuten
Name the Governance Gap, Not the Tooling Quirk•3 Minuten
Classify the Data Before You Connect the Agent•3 Minuten
Apply Privacy by Design and Connect Governance to the Organization•3 Minuten
Inventory the Data, Define the Roles, Minimize the Exposure•3 Minuten
Register the Agent, Test the Controls, and Keep Both Current•3 Minuten
Govern the Agents That Touch the Most Sensitive Data First•3 Minuten
Take One Agent from Ungoverned to Documented This Week•3 Minuten
2 Lektüren•Insgesamt 20 Minuten
Identify and Mitigate AI Risks in Real Workflows — Key Takeaways •10 Minuten
Govern Data, Access, and Compliance in AI Systems — Key Takeaways •10 Minuten
1 Aufgabe•Insgesamt 20 Minuten
Safety, Security, and Governance for Beginners•20 Minuten
Measure Impact and Manage Agent Lifecycles
Modul 3•1 Stunde abzuschließen
Moduldetails
This module addresses two practical demands that follow every AI agent deployment: proving that the agent is delivering real value, and keeping it under control as your organization grows. You will learn how to capture baseline metrics before automation begins, measure what actually changes after deployment, and present those findings in a form that resonates with managers and finance teams. You will also build the documentation habits that prevent agents from becoming forgotten, unowned, or duplicated across your organization. By the end of this module, you will be able to quantify the business impact of an AI agent and manage its lifecycle with clear ownership, structured reviews, and principled criteria for when to evolve or retire it.
Das ist alles enthalten
10 Videos2 Lektüren1 Aufgabe
Infos zu Modulinhalt anzeigen
10 Videos•Insgesamt 23 Minuten
Measure Impact and Manage Agent Lifecycles•2 Minuten
Stop Pointing at Activity and Start Measuring Impact•2 Minuten
Measure What Managers Actually Care About•3 Minuten
Build the Before-and-After Case Your Manager Can Act On•2 Minuten
Start Where the Numbers Already Exist•2 Minuten
Name the Agents You Actually Own•2 Minuten
Treat Your Agents Like Assets, Not Experiments•3 Minuten
Catalog, Document, and Keep Your Agents Governed•2 Minuten
Govern the Agents That Can Cost You a Deal•2 Minuten
End of Course•1 Minute
2 Lektüren•Insgesamt 20 Minuten
Measure and Prove Business Impact with Simple Metrics — Key Takeaways •10 Minuten
Document, Own, and Evolve AI Agents as Organizational Assets — Key Takeaways•10 Minuten
1 Aufgabe•Insgesamt 20 Minuten
Measure Impact and Manage Agent Lifecycles•20 Minuten
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