AI+ Agent™

# AP 1401

Empower businesses with AI + Agent ™ to design, deploy, and scale intelligent agents.

AI+ Agent Podcast
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Why This Certification Matters

At a Glance: Course + Exam Overview

Program Name

AI+ Agent™

Included

Instructor-led OR Self-paced course + Official exam + Digital badge

Duration

Instructor-Led: 1 day (live or virtual)
Self-Paced: 8 hours of content

Prerequisites

Basic understanding of AI concepts, programming knowledge in Python or similar languages, and foundational data analysis skills. Perfect for learners with a problem-solving mindset who want to apply analytical thinking to real-world AI challenges and intelligent agent development.

Exam Format

50 questions, 70% passing, 90 minutes, online proctored exam

Delivery

Online labs, projects, case studies

Outcome

Industry-recognized credential + hands-on experience

Who Should Enroll?

Job Roles & Industry Outlook

Skills You’ll Gain

What You'll Learn

1.1 Understanding AI Agents

1.2 Anatomy and Ecosystem of AI Agents

1.3 Applications, Misconceptions, and Mini Case Studies

1.4 Case Study: Transforming Customer Support at Acme Retail with AI Agents

1.5 Hands-On Exercise 1: Build a Q&A ChatBot Using Gemini + Prompt + LLM Chain in Flowise Cloud

 

2.1 Anatomy of an AI Agent

2.2 Classification of AI Agents

2.3 Matching Agents to Use Cases

2.4 Case Study: Enhancing Mental Health Support with AI Agents at Earkick

2.5 Hands-On Exercise

 

3.1 No-code and visual agent platforms

3.2 Tools Overview and Setup

3.3 Start building: “Your First Flow” with n8n

3.4 Case Study: Empowering HR with AI – Building an Onboarding Assistant Without Coding

3.5 Hands-on Exercise

4.1 Agent 1

4.2 Agent 2

4.3 Agent 3

4.4 Agent 4

4.5 Troubleshooting and Validation of AI Agents

4.6 Share Your AI Agent

4.7 Hands-On Exercise 1

 

5.1 Multi-Tool Agents

5.2 Agent Chaining and Workflow Basics

5.3 Managing Agent State: State, Context, and User Journey

5.4 Prompt Engineering for Agents

5.5 Multi-Agent Systems (MAS)

5.6 Case Study: Smarter Marketing Campaigns with Tool Chaining

5.7 Hands-on Exercise: Automating Order Tracking and Notifications with Make.com

 

6.1 Strategies for AI Integration

6.2 Choosing the Right AI Tools

6.3 Project Data Preparation for AI

6.4 AI Implementation Plan

6.5 Monitoring AI Integration

6.6 Evaluating AI Outcomes

6.7 Risk Management in AI Projects

6.8 Workshop: AI Tool Deployment

7.1 Observability Basics

7.2 Performance Evaluation: Key Metrics

7.3 Guardrails: Preventing Misuse & Ensuring Safe Outputs

7.4 Responsible AI

7.5 Mini-Case: Failure and Recovery in Agent Deployments

7.6 Real-world Failures

7.7 Peer Sharing: How to Present and Discuss Agent Logs/Results

 

8.1 Capstone Project 1: Smart Personal AI Assistant

8.2 Capstone Project 2: Smart Lead Engagement – From Email to Personalized Outreach – Sales Support Agent

8.3 Capstone Project 3: Education Tutor Agent

8.4 HR Knowledge Bot

8.5 Customer Service Agent

8.6 Healthcare Triage Bot

 

Tools You'll Explore

Python

Multi-Agent Orchestration Frameworks

LlamaIndex

OpenAI API

Hugging Face Inference

Multi-Agent Orchestration Frameworks

Vector Databases (e.g., Pinecone, Chroma)

Workflow Orchestration (e.g., Airflow, Prefect)

Jupyter Notebooks

Docker

Prompt Engineering Platforms

Prerequisites

Exam Details

Duration

90 minutes

Passing Score

70% (35/50)

Format

50 multiple-choice/multiple-response questions

Delivery Method

Online via proctored exam platform (flexible scheduling)

Exam Blueprint:

Choose the Format That Fits Your Schedule

What’s Included (One-Year Subscription + All Updates):

Instructor-Led (Live Virtual/Classroom)

Self-Paced Online

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Frequently Asked Questions

Yes, this certification is highly practical, focusing on building and deploying AI agents for real workflows. You’ll be able to apply agent-based automation directly to business processes, customer journeys, and internal operations.

 

This certification focuses specifically on intelligent agent design, orchestration, and deployment—going beyond theory to show how agents can act, decide, and collaborate across tools, apps, and systems in real business environments.

 

You’ll build task-oriented and conversational agents, multi-agent workflows, tool-using agents, and process-automation solutions—mirroring real organizational use cases like support automation, internal copilots, and workflow agents.

The course combines expert-led lessons, guided labs, and project-based learning where you design, configure, and deploy agents end-to-end, ensuring you gain hands-on, implementation-ready skills—not just conceptual knowledge.

 

It equips you with in-demand skills in agent building, orchestration, and automation, along with a portfolio of agent projects that align with emerging roles in AI engineering, automation, and intelligent systems design.

 

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