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AReaL

The RL Bridge for LLM-based Agent Applications. Made Simple & Flexible.

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python/uvpythondockerPythonllm-agentagentrlmlsysagent-appmachine-learning-systemsllm-reasoningreinforcement-learningllm

AReaL is a Python-based framework described as 'The RL Bridge for LLM-based Agent Applications', positioning itself as simple and flexible. It connects reinforcement learning training with LLM agent applications, and ships with agent configuration files (AGENTS.md, CLAUDE.md, .claude directory) plus a uv-based Python toolchain and Docker support.

You want to apply reinforcement learning to LLM-based agents through a single framework rather than wiring training and agent infrastructure yourself.

Use it to

  • Train LLM agents with reinforcement learning
  • Bridge RL training pipelines with agent applications
  • Run experiments in the provided Docker/uv environment
  • Explore RL for LLM reasoning tasks

For ML engineers and researchers working on RL for LLM agents

Role
agent-app
Language
Python
Licence
Apache-2.0
Forks
603
Open issues
19
Last push
2026-09-17
Latest release
v0.1.1 · 2025-03-04
Skills shipped
7
topicsreinforcement-learningllm-agentsllm-reasoningmlsyspythonagent-applications