Building LLM Applications With Prompt Engineering

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Course Overview

With the incredible capabilities of large language models (LLMs), enterprises are eager to integrate them into their products and internal applications for a wide variety of use cases, including (but not limited to) text generation, large-scale document analysis, and chatbot assistants. The fastest way to begin leveraging LLMs for diverse tasks is by using modern prompt engineering techniques. These techniques are also foundational for more advanced LLM-based methods such as Retrieval-Augmented Generation (RAG) and Parameter-Efficient Fine-Tuning (PEFT). In this workshop, learners will work with an NVIDIA language model NIM, powered by the open-source Llama-3.1 large language model, alongside the popular LangChain library. The workshop will provide a foundational skill set for building a range of LLM-based applications using prompt engineering.

Who Should Attend

Experienced Python Developers

Course Objectives

    • Understand how to apply iterative prompt engineering best practices to create LLM-based applications for various language-related tasks.
    • Be proficient in using LangChain to organize and compose LLM workflows.
    • Write application code to harness LLMs for generative tasks, document analysis, chatbot applications, and more.

Course Outline

  • Course Introduction
  • Introduction to Prompting
  • LangChain Expression Language (LCEL), Runnables, and Chains
  • Prompting with Messages
  • Structured Output
  • Tool Use and Agents
  • Assessment and Final Review

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Class Dates & Times

Class times are listed Eastern time

This is a 1-day class

Price : $500.00

NERCOMP Price : $475.00

Class dates not listed.
Please contact us for available dates and times.