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Serverless Agentic Workflows with Amazon Bedrock

California, United States

The Non-degree in Serverless Agentic Workflows with Amazon Bedrock at DeepLearning.AI is a program for international students taught in English.

đź“– Introduction

DeepLearning.AI is an online education platform founded in 2017 by Andrew Ng, a leading AI expert and co-founder of Coursera. As a private organization, DeepLearning.AI specializes in AI and machine learning education, offering high-quality courses, specializations, and professional certifications in collaboration with top institutions and industry leaders. The platform is known for its practical, hands-on approach to teaching AI concepts and its focus on making cutting-edge AI knowledge accessible to learners worldwide.

📚 About the Program

Agentic workflows handle unpredictable tasks based on user input, like making API calls. A serverless architecture efficiently manages these tasks and varying workloads without maintaining servers, enabling faster deployment.You will learn to protect sensitive information and shield customers from harmful content by employing agents with guardrails. This course teaches you to build and deploy a serverless agentic application. You’ll learn to create agents with tools, code execution, and guardrails. The serverless setup is ideal for agents that might need to access many tools or APIs on demand. You’ll explore this through hands-on examples where you’ll: 1. Build a customer service bot for a fictional tea mug business that can handle tasks like answering queries, retrieving information, and processing orders.2. Connect multiple types of agent actions, and implement guardrails for responsible operation.3. Use Amazon Bedrock’s fully managed services to deploy and scale the bot efficiently.The course will implement two elements essential to the deployment of business applications:1. Serverless deployment to achieve rapid scaling and seamless operation without the need to manage infrastructure.2. Responsible agent to protect your application from malicious prompts and unintended outputs by configuring guardrails.In detail, here’s what you’ll do: 1. Use Amazon Bedrock to create an AI agent, explore how you invoke the agent, and see the trace to review the agent’s thought process and observation loop until it reaches its final output.2. Connect your customer service agent to services like a CRM to get customer details and log support tickets in real time.3. Attach a code interpreter to your agent, giving it the ability to perform accurate calculations, where it writes and runs its own Python code to support its response.4. Implement and configure guardrails to prevent your agent from revealing sensitive information and using inappropriate language.5. Connect your agent to a repository of customer support documents that discuss many issues that the agent can resolve directly or choose to escalate, if necessary, to a human workflow.6. Get a walkthrough of the Amazon Bedrock interface in the AWS console to configure agents, set the guardrails, and connect to knowledge databases, all in an easy-to-configure graphical interface.By the end, you will have built a sophisticated AI agent capable of handling real-world customer support scenarios, fully serverless, and ready to scale.

Agentic workflows handle unpredictable tasks based on user input, like making API calls. A serverless architecture efficiently manages these tasks and varying workloads without maintaining servers, enabling faster deployment.You will learn to protect sensitive information and shield customers from harmful content by employing agents with guardrails. This course teaches you to build and deploy a serverless agentic application. You’ll learn to create agents with tools, code execution, and guardrails. The serverless setup is ideal for agents that might need to access many tools or APIs on demand. You’ll explore this through hands-on examples where you’ll: 1. Build a customer service bot for a fictional tea mug business that can handle tasks like answering queries, retrieving information, and processing orders.2. Connect multiple types of agent actions, and implement guardrails for responsible operation.3. Use Amazon Bedrock’s fully managed services to deploy and scale the bot efficiently.The course will implement two elements essential to the deployment of business applications:1. Serverless deployment to achieve rapid scaling and seamless operation without the need to manage infrastructure.2. Responsible agent to protect your application from malicious prompts and unintended outputs by configuring guardrails.In detail, here’s what you’ll do: 1. Use Amazon Bedrock to create an AI agent, explore how you invoke the agent, and see the trace to review the agent’s thought process and observation loop until it reaches its final output.2. Connect your customer service agent to services like a CRM to get customer details and log support tickets in real time.3. Attach a code interpreter to your agent, giving it the ability to perform accurate calculations, where it writes and runs its own Python code to support its response.4. Implement and configure guardrails to prevent your agent from revealing sensitive information and using inappropriate language.5. Connect your agent to a repository of customer support documents that discuss many issues that the agent can resolve directly or choose to escalate, if necessary, to a human workflow.6. Get a walkthrough of the Amazon Bedrock interface in the AWS console to configure agents, set the guardrails, and connect to knowledge databases, all in an easy-to-configure graphical interface.By the end, you will have built a sophisticated AI agent capable of handling real-world customer support scenarios, fully serverless, and ready to scale.

🏫 About the University

DeepLearning.AI is dedicated to advancing artificial intelligence education and empowering individuals to build careers in AI and machine learning. The platform offers a range of courses, including the renowned "Deep Learning Specialization" and "AI for Everyone," designed to cater to beginners, professionals, and researchers. By collaborating with leading experts and institutions, DeepLearning.AI provides industry-relevant content that bridges the gap between theoretical knowledge and real-world applications. Through its online courses, research initiatives, and community-driven projects, DeepLearning.AI plays a crucial role in shaping the future of AI education and innovation.

đź’° Fees

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$0 USD

Tuition Fee

$120 USD

$120 USD

per year

âś… Entry Requirements

The minimum age is 18 and the maximum age is 50.

English Fluent is required.

Minimum education level Bachelor's degree

All students from all countries are eligible to apply to this program.

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