LLM Security Assessments

Security assessment of LLM applications: prompt injection, data leakage and model abuse.

What it is

LLM applications introduce new vulnerability classes: prompt injection, insecure output handling, training-data poisoning, excessive agency and sensitive-information disclosure — catalogued in the OWASP Top 10 for LLM Applications. We assess your LLM integrations, RAG pipelines and agents against these risks with adversarial testing.

Coverage

  • Prompt injection and jailbreak testing
  • Data leakage and memorisation checks
  • Excessive agency and tool-permission review
  • RAG pipeline security review
  • Output handling and downstream impact

How we deliver

  1. Scope — models, integrations and data agreed.
  2. Map — architecture and trust boundaries.
  3. Test — adversarial assessment against LLM risks.
  4. Report — risk-rated findings with mitigations.
  5. Retest — verify guardrails and fixes.

Outcomes

  • Known LLM risks measured in your app
  • Guardrail and architecture recommendations
  • Evidence for AI governance reviews
  • Safer path to production

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