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Unknown · since Oktober 2023 (Paper/erste DSPy-Version); ursprünglicher Vorläufer DSP Dezember 2022 · 2× · last seen Sep 27, 2026

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DSPy (Declarative Self-improving Python) is an open-source framework developed by Stanford NLP for programming language models declaratively instead of manual prompt engineering. Developers define signatures (input/output specifications) and modules in Python; optimizers automatically tune prompts and few-shot examples against a chosen metric. It supports virtually any LLM provider via its LiteLLM integration and is typically installed via pip for self-hosted or custom pipeline use. The foundational paper was published in October 2023, and the project continues to be actively developed under the MIT license.

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29.06.27.09.

Features

LicenseMIT License
PlatformPython framework/library (pip package 'dspy')
PriceFree, open source (no license fee)
Protocol CompatibilityOpenAI- and Anthropic-compatible HTTP endpoints via LiteLLM, plus MCP compatibility
Release DateOctober 2023 (foundational paper 'DSPy: Compiling Declarative Language Model Calls into Self-Improving Pipelines')
Supported Models/ProvidersAny LLM provider via LiteLLM (incl. OpenAI, Anthropic, Google, Azure, AWS Bedrock, Ollama, local models)

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