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Agentic AI Foundations

  • Course Code GK910031
  • Duration 1 day
  • Version 1.1.9

Public Classroom Price

SAR2,625.00

excl. VAT

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Course Delivery

This course is available in the following formats:

  • Company Event

    Event at company

  • Public Classroom

    Traditional Classroom Learning

  • Virtual Learning

    Learning that is virtual

Request this course in a different delivery format.

Course Overview

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In this course, you’ll explore the core principles and strategies for designing agentic AI systems using AWS services.

 

You’ll learn how agentic AI differs from traditional conversational systems. You’ll also discover how to use tools like Amazon Q Developer, Amazon Quick Suite, Kiro, Strands Agents SDK, and Amazon Bedrock AgentCore to build autonomous, goal-driven solutions that solve real-world problems.

- Course level: Fundamental

- Duration: 1 day

 

Updated August 2026

Course Schedule

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    • Delivery Format: Virtual Learning
    • Date: 17 September, 2026 | 9:00 AM to 5:00 PM
    • Location: Virtual (Arab Stand)
    • Language: English

    SAR2,625.00

    • Delivery Format: Public Classroom
    • Date: 17 September, 2026 | 9:00 AM to 5:00 PM
    • Location: Cairo-Sheraton (Egypt Stan)
    • Language: English
    • Delivery Format: Virtual Learning
    • Date: 16 October, 2026 | 8:00 AM to 4:00 PM
    • Location: Virtual (Arab Stand)
    • Language: English

    SAR2,625.00

    • Delivery Format: Virtual Learning
    • Date: 16 November, 2026 | 9:00 AM to 5:00 PM
    • Location: Virtual (Arab Stand)
    • Language: English

    SAR2,625.00

    • Delivery Format: Public Classroom
    • Date: 17 December, 2026 | 9:00 AM to 5:00 PM
    • Location: GK Riyadh (Arab Stand)
    • Language: English

    SAR2,625.00

Target Audience

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This course is intended for:

- Software developers new to agentic AI seeking foundational knowledge

- Technical professionals exploring AI capabilities and interested in core components and applications of agentic AI

- Development teams evaluating agentic AI solutions and needing to differentiate between agent types

- AWS Users expanding into agentic AI, including current users of Amazon Q Developer, Amazon Quick Suite, and Amazon Bedrock AgentCore

Course Objectives

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After this course participants should be able to:

  • Summarize the evolution of agentic AI and define what makes something agentic
  • Identify core components of agentic systems
  • Distinguish between workflow, autonomous, and hybrid agents
  • Identify basic implementation patterns for agentic AI
  • Compare AWS service options for agentic AI
  • Describe capabilities and use cases of Amazon Quick Suite, Amazon Q Developer, and Kiro
  • Explain Strands Agents framework and its applications
  • Build and customize a basic AI agent using Strands Agents SDK
  • Develop a simple task-specific agent for real-world application using Strands Agents SDK
  • Explain Amazon Bedrock AgentCore
  • Describe observability and interoperability patterns for production agentic AI systems

Course Content

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Day 1

Module 1: From LLMs to Agents

  • Limitations of Large Language Models (LLMs)
  • Innovations powering agents 
  • Evolution from LLMs to agentic AI systems

Module 2: Exploring Agentic AI

  • Understanding agentic AI
  • Types of AI agents
  • Agentic AI applications

Module 3: Understanding Agentic AI Workflows

  • Workflow patterns
  • Amazon Bedrock flows overview

Module 4: AWS Agentic Development and Productivity Tools

  • AWS agentic AI solutions
  • Amazon Quick Suite
  • Amazon Q Developer
  • Hands-on lab: Accelerating software development using Amazon Q Developer
  • Kiro: AI-powered integrated development environment (IDE) with spec-driven development

Module 5: Implementing agentic AI Frameworks with Amazon Bedrock AgentCore

  • Agentic AI frameworks
  • Hands-on lab: Getting started with Strands Agents
  • Amazon Bedrock AgentCore

Module 6: Building Custom Solutions

  • Customizing agentic infrastructure
  • Observability and monitoring
  • Agent interoperability

Module 7: Course Wrap-up

  • Next steps and additional resources
  • Course summary

Course Prerequisites

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We recommend that attendees of this course have:

  • Generative AI Essentials or equivalent work experience
  • Basic AWS knowledge and software development experience
Recommended prerequisites:

Test Certification

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None

Follow on Courses

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The following courses are recommended for further learning and development:

The following are recommended for further study:

Further Information

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Activities :

This course includes presentations, hands-on labs, and group exercises.