Coursera

Hands-on Agentic AI: Building Intelligent Agents 专项课程

Coursera

Hands-on Agentic AI: Building Intelligent Agents 专项课程

Build Production-Ready Multi-Agent AI Systems.

Master protocols, frameworks, and governance for enterprise-scale agentic AI deployment

Harshita Gulati
Manav Pandey
Starweaver

位教师:Harshita Gulati

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深入学习学科知识
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推荐体验

4 周 完成
在 10 小时 一周
灵活的计划
自行安排学习进度
深入学习学科知识
中级 等级

推荐体验

4 周 完成
在 10 小时 一周
灵活的计划
自行安排学习进度

您将学到什么

  • Implement industry-standard protocols like MCP and build stateful AI workflows using LangGraph framework.

  • Design multi-agent systems with proper communication, coordination, and governance for enterprise deployment.

  • Create production-ready agents using GPT API, LangChain, and modern frameworks with ethical considerations.

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授课语言:英语(English)
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March 2026

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  • 培养对关键概念的深入理解
  • 通过 Coursera 获得职业证书

专业化 - 8门课程系列

MCP - Model Content Protocol

MCP - Model Content Protocol

第 1 门课程 4 hours

您将学到什么

您将获得的技能

类别:System Design and Implementation
类别:Enterprise Security
类别:Real Time Data
类别:Interoperability
类别:API Design
类别:Software Architecture
类别:Servers
类别:Performance Tuning
类别:Scalability
类别:AI Security
类别:Model Context Protocol
Agentic AI Protocols (MCP, A2A, ACP)

Agentic AI Protocols (MCP, A2A, ACP)

第 2 门课程 4 hours

您将学到什么

  • A deeper understanding of the core principles underlying multi-agent communication and collaboration

  • Insight into the structural and functional aspects of MCP, A2A, and ACP protocols

  • Ability to critically analyze and refine information exchange formats and negotiation flows.

LangGraph Framework

LangGraph Framework

第 3 门课程 4 hours

您将学到什么

您将获得的技能

类别:AI Orchestration
类别:Agentic Workflows
类别:LangChain
类别:Context Management
类别:LangGraph
类别:MLOps (Machine Learning Operations)
类别:Generative AI Agents
类别:Distributed Computing
类别:LLM Application
类别:Software Design Patterns

您将学到什么

  • Define core concepts and capabilities of AI agents and multi-agent systems.

  • Design effective multi-agent AI systems for various tasks and implement communication protocols and workflows.

  • Apply governance models and regulatory frameworks to ensure safe and compliant AI agent operations.

您将获得的技能

类别:Governance
类别:Communication Strategies
类别:Data Ethics
类别:Software Architecture
类别:Agentic systems
类别:Regulatory Compliance
类别:Communication
类别:Systems Architecture
类别:AI Workflows
类别:Artificial Intelligence
类别:AI Orchestration
类别:Responsible AI
类别:Generative AI Agents
类别:AI Security
类别:Coordination
类别:Scalability
Building AI Agents for Complex Tasks

Building AI Agents for Complex Tasks

第 5 门课程 4 hours

您将学到什么

您将获得的技能

类别:Scenario Testing
类别:Model Evaluation
类别:Development Testing
类别:Performance Testing
类别:Tool Calling
类别:Prompt Engineering
类别:AI Orchestration
类别:Artificial Intelligence
类别:Context Management
类别:Agentic systems
类别:AI Workflows
类别:LLM Application
类别:LangChain
类别:Debugging
Advanced Multi-Agent AI System

Advanced Multi-Agent AI System

第 6 门课程 3 hours

您将学到什么

您将获得的技能

类别:Application Deployment
类别:System Monitoring
类别:Site Reliability Engineering
类别:LangGraph
类别:Systems Architecture
类别:Event Monitoring
类别:AI Enablement
类别:Middleware
类别:Generative Model Architectures
类别:Agentic Workflows
类别:Enterprise Application Management
类别:Model Deployment
类别:Generative AI Agents
类别:Software Architecture
类别:CrewAI
类别:Agentic systems
类别:AI Security
类别:Continuous Monitoring
类别:AI Orchestration
类别:Artificial Intelligence and Machine Learning (AI/ML)
Ethical Governance & Risk in Agentic AI

Ethical Governance & Risk in Agentic AI

第 7 门课程 4 hours

您将学到什么

您将获得的技能

类别:Risk Management
类别:Responsible AI
类别:Governance
类别:Risk Analysis
类别:Accountability
类别:Ethical Standards And Conduct
类别:Case Studies
类别:Regulatory Compliance
类别:Business Ethics
类别:Artificial Intelligence
类别:Regulatory Requirements
类别:Compliance Management
类别:Agentic systems

您将学到什么

  • Interact with the OpenAI API to leverage the power of GPT-4 for your specific needs and use-case

  • Create an instance of GPT-4 that is capable of reasoning through complex logic and interacting with real time data

  • Learn about considerations relating to security and scaling when using large language models for business tasks

您将获得的技能

类别:Prompt Engineering
类别:Business Analysis
类别:Generative AI
类别:System Design and Implementation
类别:LLM Application
类别:TypeScript
类别:Application Programming Interface (API)
类别:Business Logic
类别:AI Security
类别:Node.JS
类别:Cost Benefit Analysis
类别:OpenAI API
类别:File I/O
类别:AI Enablement
类别:Scalability

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位教师

Harshita Gulati
Coursera
3 门课程 813 名学生
Manav Pandey
1 门课程 878 名学生
Starweaver
Coursera
554 门课程 1,041,916 名学生

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