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Stephen Bush has completed

Designing Agentic Systems with LangChain

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3 hr
2,800 XP
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Course Description

Agentic workflows that integrate LLMs and tools to perform nuanced tasks are at the forefront of the AI transformation. In this course, you'll learn the key principles behind LangChain agents, including configuring prompts, integrating tools, and managing complex workflows. By the end of this course, you'll be able to build intelligent systems that automate complex tasks, enhance productivity, and provide dynamic solutions tailored to specific business needs.

Master the Essentials of LangChain Agents

You'll learn how to integrate prompts, language models, and tools into workflows using the Reasoning and Action (ReAct) framework. Following that, you'll be able to set up agentic workflows, configure tools, and understand the core principles of LangChain agents while visualizing these workflows with LangGraph. You'll build custom agents, set up tools for accessing external data sources like the Wikipedia API, and manage agent states. You'll be guided through defining nodes and edges, creating conditional pathways, and assembling complex workflows that adapt to varying conditions.

Build Dynamic Chat Agents

Finally, you'll learn to monitor messages, define nodes for flexible function calling, and configure your chatbot for multiple-tool handling. By the end of this course, you'll be able to build intelligent systems that automate complex tasks, enhance productivity, and provide dynamic solutions tailored to specific business needs.
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  1. 1

    The Essentials of LangChain agents

    Free

    Build intelligent agentic systems! Discover the key components of LangChain agents, including how prompts, LLMs, and tools work together for reasoning and action. You'll set up an agent with OpenAI's API, define custom tools, and tackle real-world tasks like math calculations. Plus, explore how LangChain organizes data using graphs, nodes, and edges.

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    Agents in LangChain
    50 xp
    Creating a ReAct agent
    100 xp
    Components of LangChain agents
    50 xp
    Building custom tools
    50 xp
    Create a tool for math calculations
    100 xp
    Integrating custom tools and queries
    100 xp
    Conversation with a ReAct agent
    50 xp
    Conversation setup
    100 xp
    Ask questions about conversation history
    100 xp
  2. 2

    Building Chatbots with LangGraph

    Build dynamic, tool-augmented chatbots with LangChain and LangGraph! You’ll explore how to create a chatbot that adapts based on user input by defining states and integrating external APIs for real-time information retrieval. You'll connect these components into a responsive graph structure, enabling smooth transitions between conversation and tool-assisted responses. By the end, you’ll have a visually represented chatbot framework with enhanced reasoning and multi-step workflows.

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  3. 3

    Build Dynamic Chat Agents

    Expand your chatbot with dynamic tools and memory! Define and integrate multiple tools into flexible workflows, build functions for dynamic tool calling, and configure your chatbot for multiple-tool handling. Organize memory and outputs to enable interleaved, multi-turn conversations. By the end, you'll have created a sophisticated chatbot capable of complex interactions.

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For Business

Training 2 or more people?

Get your team access to the full DataCamp platform, including all the features.

collaborators

Collaborator's avatar
James Chapman
Collaborator's avatar
Jasmin Ludolf
Collaborator's avatar
Francesca Donadoni

prerequisites

Developing LLM Applications with LangChain
Dilini K. Sumanapala, PhD HeadshotDilini K. Sumanapala, PhD

Founder & AI Engineer, Genverv Ltd.

Dilini K. Sumanapala, PhD, is a published cognitive neuroscientist with a background using machine learning to study how the brain processes and learns new information. After delivering national edtech interventions for her postdoctoral work at Birkbeck, University of London, she transitioned to machine-learning within industry. She later founded Genverv, Ltd. to focus on natural language processing, text-based agents, and generative AI. Dilini regularly speaks at AI panels in London and has given TEDx talks on neuroscience and responsible science communication.
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