An Evaluation of Data Leakage Risks in Tool-Using LLM Agents in Realistic Scenarios
AI agents are increasingly being adopted in enterprise and personal settings with access to emails, databases, documents, and other tools where they can read, update, and disseminate sensitive information. Much of prior research on data leakage risks in agents has focused on adversarial data exfiltration through prompt injections and jailbreaks. However, sensitive information may also be exposed during non-adversarial use, creating leakage risks even when users issue benign requests. We report a
Record details
Published: 15 June 2026
Source: arXiv
Category: Research
Topics: Safety & alignment · Agents & autonomy
Retrieved: 14 July 2026
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ethics.ai (15 June 2026), “An Evaluation of Data Leakage Risks in Tool-Using LLM Agents in Realistic Scenarios,” evidence record 967, https://ethics.ai/record/967 (originally published by arXiv).
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