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ScienceBuddy: Recursive-in-Recursive Self-Improvement for Interactive Scientific Agents

Researchers released ScienceBuddy, an interactive scientific research workspace built on a paradigm they call recursive-in-recursive self-improvement, submitted to arXiv on 15 Sep 2026. The system couples harness evolution with model reinforcement learning: the inner recursion improves the harness with the model fixed, while the outer recursion trains the model under the improved harness. Benchmark cases span four scientific task families, and the team released ScienceBuddy as a research product with a website at science-buddy.io.

read2 min views2 publishedSep 16, 2026
ScienceBuddy: Recursive-in-Recursive Self-Improvement for Interactive Scientific Agents
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  [Submitted on 15 Sep 2026]


[View PDF](http://arxiv.org/pdf/2609.17523v1)

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Abstract:We introduce and release ScienceBuddy, an interactive scientific research workspace that brings continually improving scientific agents into researchers' everyday workflows. ScienceBuddy supports researchers in carrying out scientific tasks while transforming their requests, feedback, and execution evidence into tasks and evaluation rubrics for continual learning. At its core is recursive-in-recursive self-improvement, a paradigm that couples harness evolution with model reinforcement learning: the inner recursion improves the harness with the model fixed, while the outer recursion trains the model under the improved harness. Harness evolution shapes training experience, and model learning creates new opportunities for harness adaptation. We present case studies of researcher interaction, harness refinement, and model learning, with the benchmark cases spanning four scientific task families. By releasing ScienceBuddy as a research product, we make this paradigm available to the scientific community and take a step toward discovery intelligence: scientific AI that advances through sustained collaboration with researchers and evolves alongside the research it supports. Website: this http URL

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