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rl-finetune-roi-research

Evaluate ROI of reinforcement learning and fine-tuning of foundation models via a structured 5-phase research project (parallel market+academic discovery → stream selection → parallel deep research → adversarial review → synthesis). Produces per-chapter Markdown files with verified academic citations, optional infographics, a mandatory human-in-the-loop gate, and a final PDF. Trigger ONLY when the user asks about the ROI, business case, "sweet spot," or decision criteria for fine-tuning / RL / RLHF / LoRA / domain-adapting foundation models, OR explicitly asks to run this exact 5-phase research workflow on a substituted topic. Do NOT trigger for general "research X" requests — the deep-research and research skills already cover those.

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Source facts

Repository
jb-612/research-agent
Last source activity
April 28, 2026 at 09:09
Detected SKILL.md language
English
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