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human-oversight-design

スター2
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更新日2026年6月25日 11:58

Designs the operational human-oversight loop for a NON-AGENTIC ML decision system — the in-decision-path review mechanism that sits BEFORE a prediction takes effect. Owns escalation routing + queue topology, reviewer-queue sizing / SLA / prioritization (Little's Law), the override / appeal / contest flow with its audit trail, automation-bias mitigation (anti-rubber-stamp UI + process), and oversight-effectiveness metrics keyed to risk tier. Emits a human-oversight design doc keyed to the system's risk tier. Use when asked "how do I route low-confidence predictions to a human", how big should the review team be, how does a person override or appeal an automated decision, how do I stop reviewers rubber-stamping the model, or how do I prove the EU-AI-Act "human oversight" box is real. Defers risk-tier definitions + governance framework to `/responsible-ai-governance`, the threshold/band that SELECTS cases to `/decision-threshold-policy`, post-hoc QA sampling to `/feedback-loop`, IAA metric mechanics to `/label-q

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