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Handshake is seeking an AI Red Teamer in Seattle, WA, to stress-test large language models by designing adversarial prompts. The role involves evaluating model outputs, documenting findings, and collaborating with a multidisciplinary team to strengthen AI safety.
Ideal candidates should have strong experience with LLMs, an ability to think like an adversary, and an ethical approach to the role. Regular exposure to potentially disturbing content is expected.
As an AI Red Teamer, you will stress-test large language models by intentionally trying to break them. Rather than checking whether an answer is correct, you will design creative, adversarial prompts that expose vulnerabilities: unsafe content, bias, broken guardrails, hallucinations, prompt injection weaknesses, and unexpected behaviors. Your work directly supports AI safety and model robustness for leading research labs.
This is a generalist red teaming role. You will probe models across the full spectrum of risk categories, including content safety, CBRN (chemical, biological, radiological, nuclear), cybersecurity, persuasion and influence operations, child safety, self-harm, over-companionship, and regulatory compliance. Red teaming may span text, image, voice, and agentic model capabilities depending on project needs.
This role requires creativity, curiosity, and an ability to think like an adversary while operating with strong ethical judgment.
This role involves regular and deliberate exposure to harmful content. You will encounter and intentionally generate content involving violence, self‑harm, hate speech, sexually explicit material, child safety scenarios, and other categories of harmful output as part of structured adversarial testing. Candidates must be able to engage with this material professionally and sustainably. Support resources are available.