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Speaker

Pantelis Hadjipantelis

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ML Scientist

Pantelis is an ML Scientist whose journey spans applied statistics, biostatistics, quantitative analysis, and data science consulting. In his free time, he thinks the Internet is (still) wrong, so he spends his time answering modelling assumptions online. In his work, he uses Pydantic to bring type safety and validation discipline to real-world ML pipelines, especially when working with LLMs that like to get creative.

Bio from: PyDataMCR August

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When working with Large Language Models (LLMs), how do we ensure a probabilistic blob of text is something our code can actually use? In this talk, we explore how Pydantic emerged at a perfect moment exactly for this task; bridging Python's flexibility with the structured data needs of modern AI applications. We will introduce Pydantic and then demonstrate practical applications of it; from prompt engineering and parsing responses, to example of robust function calling and tool chaining via APIs.