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Orchard

Open-Source Agentic Modeling Framework
Posted: May 01, 2026
Tags: Agents, Training, Framework

Orchard is an open-source framework for training LLM-based agents across diverse task domains. It provides reusable agentic data, training recipes, and evaluations — covering coding, GUI navigation, and personal assistant tasks — through a harness-agnostic design that separates environment management from training logic.

Orchard Env provides lightweight sandbox lifecycle management. Three specialized recipes demonstrate the framework’s reach:

  • Orchard-SWE (coding agents): 67.5% on SWE-bench Verified with Qwen3-30B via SFT+RL
  • Orchard-GUI (vision-language agents): 74.1% on WebVoyager with a 4B model
  • Orchard-Claw (personal assistants): 73.9% pass@3 on Claw-Eval

Contributors

  • Baolin Peng
  • ,
  • Wenlin Yao
  • ,
  • Qianhui Wu
  • ,
  • Hao Cheng
  • ,
  • Xiao Yu
  • ,
  • Ruiyi Yang
  • ,
  • Tao Ge
  • ,
  • Alessandro Sordoni
  • ,
  • Xingdi Yuan
  • ,
  • Yelong Shen
  • ,
  • Pengcheng He
  • ,
  • Tong Zhang
  • ,
  • Zhou Yu
  • ,
  • Jianfeng Gao

Publications