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model-poisoning-reviewer

Review the integrity of the data and pipelines that shape a model's behavior against data and model poisoning (OWASP LLM04) — training and fine-tuning datasets (provenance, curation, who can contribute), RLHF/feedback loops (can attackers mass-signal bad behavior into the next update), the RAG/embedding INGESTION path (untrusted content indexed as ground truth, poisoned documents crafted to rank for targeted queries), and backdoor/trigger-phrase risk. Produces severity-ranked findings each with a poisoning path (attacker input → corrupted behavior) plus provenance/curation/validation controls. Composes supply-chain-security-reviewer for acquired models/datasets/adapters. Use when you train, fine-tune, collect feedback, or ingest external content into a knowledge base. Do NOT use for retrieval AUTHORIZATION (rag-security-architect), acquiring third-party model artifacts (supply-chain-security-reviewer), or injection at inference (prompt-injection-defender).

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Source facts

Repository
ModernNomad-98/Project-Aegis
Last source activity
July 7, 2026 at 07:49
Detected SKILL.md language
English
Stars
3
Forks
0

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