The Advanced Tool Development and Integration course builds on foundational agent skills by focusing on how to create, customize, and integrate tools into intelligent agents. Learners begin by designing custom functions and APIs that extend agent capabilities beyond built-in options, using best practices for clarity, reliability, and safety.

Advanced Tool Development and Integration
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您将获得的技能
- LLM Application
- Agentic Workflows
- Context Management
- Interoperability
- Software Testing
- Data Persistence
- Application Programming Interface (API)
- Generative AI Agents
- Agentic systems
- Software Development Tools
- AI Workflows
- OAuth
- Business Logic
- Tool Calling
- Real Time Data
- API Gateway
- AI Orchestration
- Authentications
- Debugging
- Middleware
- 技能部分已折叠。显示 9 项技能,共 20 项。
要了解的详细信息

添加到您的领英档案
10 项作业
February 2026
了解顶级公司的员工如何掌握热门技能

积累 Software Development 领域的专业知识
- 向行业专家学习新概念
- 获得对主题或工具的基础理解
- 通过实践项目培养工作相关技能
- 通过 Coursera 获得可共享的职业证书

该课程共有4个模块
You are an AI consultant building an agent for Innovate Logistics, a company struggling with a "naive" AI agent that cannot answer specific business questions like calculating shipping costs. Your mission is to fix this by building Agent-Ready Functions—proprietary tools that bridge the gap between the LLM and the company's internal logic. In this module, you will learn to create the "Function Contract" by writing detailed JSON specifications for the AI and robust, validated Python implementations that fulfill them.
涵盖的内容
3个视频2篇阅读材料3个作业3个非评分实验室
You are an AI consultant for Praxis AI, beginning a new project for the client FinCorp. Your task is to build an executive-level Financial Analysis Agent. The challenge shifts from simply building a single reliable tool to architecting an agent capable of autonomously choosing from and sequencing multiple custom tools to handle complex financial analysis queries.
涵盖的内容
3个视频3篇阅读材料3个作业3个非评分实验室
You are continuing in your consulting role, this time working with Execu-Pal, a startup with an AI executive assistant prototype that currently relies on insecure static API keys. Your mission is to re-architect the system to securely access user-specific data, such as private emails and Slack messages, by implementing OAuth 2.0 Authorization. To ensure the platform is future-proof and interoperable, you will also standardize the entire tool suite using the Model Context Protocol (MCP), enabling the agent to work seamlessly across different AI models.
涵盖的内容
2个视频2篇阅读材料2个作业2个非评分实验室
You return as an AI consultant working with Execu-Pal for Phase 2 of the engagement. While the agent now has tools, users are complaining that it is "forgetful" (asking for meeting preferences every time) and fragile (crashing when APIs time out). Your goal is to re-architect the agent into a production-grade system. You will implement a Dual-Layer Memory system to persist user context across sessions and apply Reliability Patterns (Retries, Rate Limits, and Circuit Breakers) to ensure the agent remains robust even when external services fail.
涵盖的内容
3个视频2篇阅读材料2个作业3个非评分实验室
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