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Welcome to Data Science Dojo's Meetup group. Our goal is to help connect other like-minded business professionals who are interested in teaching, learning, and sharing their knowledge and understanding of data science to a larger community. 

We encourage all members of this group to be pro-active in leading discussions on topics related to data science like machine learning, artificial intelligence, predictive analytics, big data, and IoT, as well as programming languages such as R, Hadoop, and Python.

Stay tuned to our Meetup calendar for future community events and be sure to follow us on Twitter at @DataScienceDojo. Also, be sure to visit our data science bootcamp for more information about our training.

We are always looking for new speakers/presenters! If you're interested, please email Nathan at npiccini@datasciencedojo.com. 

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  • Deep Agents with LangGraph: From Planning to Persistent Reasoning
    Online

    Deep Agents with LangGraph: From Planning to Persistent Reasoning

    Online

    ## Understanding Deep Agents: The Future of AI Autonomy

    The next evolution of AI agents is here. Deep Agents move beyond simple tool-calling
    LLMs into powerful, stateful systems that can reason over time, collaborate across sub-tasks, and deliver reliable results in real applications. This session will break down what Deep Agents are, why they matter, and how LangGraph makes them practical to build today.
    We’ll explore the limitations of traditional agents that lose context, fail on long-running tasks, or collapse without human intervention. Then we’ll introduce the four pillars of Deep Agents: planning, sub-agents, memory and state, and a virtual file system that enables durable workflows.
    A live walkthrough will show how LangGraph helps developers orchestrate scalable, production-ready Deep Agents with human oversight, observability, and debugging built in. You’ll learn how to structure persistent reasoning, delegate tasks effectively, and maintain state across complex workflows.

    ***

    ### What We Will Cover:

    • Why traditional agents fall short on multi-step, long-running tasks
    • The architecture of Deep Agents and how each pillar supports persistent reasoning
    • How LangGraph enables stateful agents with feedback loops, scaling, and error recovery
    • Building a Deep Agent step-by-step — planning, delegation, and memory management
    • Real-world use cases from research automation to decision support systems
    • Key considerations and safety mechanisms when deploying Deep Agents in production

    ***

    ### Hands-On Insights:

    Through examples and Q&A, participants will learn how to start building Deep Agents in their own environments using LangGraph. You’ll leave with the mental model, tools, and practical patterns to evolve your agent systems from simple demos into durable, intelligent applications.

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