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TING is seeking a production AI engineer to build the systems behind our internal AI intelligence layer and client AI work. This role involves working on production systems with real users and real clients, not just research.
You will own retrieval pipelines, agent workflows, evaluation harnesses, and scalable deployments on GCP, Vertex AI, and on-premise hosting, collaborating with product owners and security teams to ensure robust AI capabilities.
You will build the systems behind our internal AI intelligence layer and our client AI work. This is applied engineering on production systems with real users inside the company and real clients outside it. It is not a research post, and it is not a prompt writing post.
The work is varied by design. In a given quarter you might tune a retrieval pipeline that is returning the wrong chunks, design an authorisation model so an agent cannot read what its caller cannot read, benchmark two open weight models on a client's data to justify an on premises deployment, and then write the evaluation harness that proves the change was actually an improvement.
In your first ninety days you will ship one meaningful improvement to retrieval quality on the internal AI platform with measurement to back it, and take independent ownership of at least one client facing AI component.