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C5i, founded in 2000, builds AI products: Agent5i, Compete, Incivus and Synthetic Audiences. We seek an experienced technologist to architect and prototype solutions across four platforms within weeks: design, verify, and guide cross‑product AI capabilities.
The role involves method selection, retrieval and model strategy, evaluation design, and ownership from design to production. Collaborate with Full Stack, Cloud and Data Architects to deliver scalable AI for retail, marketing and research
Founded in 2000, C5i enables organisations to make the most effective strategic and tactical moves relating to their customers, markets and competition, at the pace the digital business world demands. We build AI products: Agent5i, our enterprise agentic AI system; Compete, digital shelf analytics for brands selling through retail; Incivus, creative effectiveness for marketing teams; and Synthetic Audiences, virtual respondents for research teams who need an answer faster than a panel can return one. Each has its own users, roadmap, release cycle and stack today, running across Azure, AWS and GCP.
You sit between what the products need to do and which method will actually do it. This is an internal product seat: no customer calendar, no pre-sales. The work is generative and agentic by default. Agent decomposition, tool and function contracts, orchestration, context assembly, retrieval design, guardrails and evaluation. Fine‑tuning and domain‑specific small models where they beat prompting on cost or accuracy. Knowing which to reach for, and recognising when none of them is the answer, is most of the job.
Every capability as a feature resolves to one of three things: a pattern the products already support, something worth building once and using across all four, or a no. You make that call before engineering commits to it. Getting it wrong in the generous direction is how a product ends up with four implementations of the same idea.
This is a hands‑on seat. You will specify an architecture and prototype it yourself in the same week. A design that reads well and cannot be built is a failure, and so is a method that works in a notebook and falls over at ten thousand users. The domain moves with the product: retail and consumer goods in Compete, marketing in Incivus, research in Synthetic Audiences, and whatever Agent5i lands in next. Depth in method transfers, depth in a single industry does not, and we are hiring for the former. Your designs become constraints for the Full Stack Architect and the Cloud and Data Architect, so involving both early is expected rather than optional.
Yes, that means reading Papers with Code, working out which of it holds, and turning the one paper in twenty that does into a feature the products can ship. That is Applied AI in this seat. Wiring up tool calls is not.
Flat. Three things decide whether you succeed here, and we weight them above any line on your CV.
Proactivity. Nobody hands you a scoped problem. Find where a product is losing to its own method, size it, decide whether it is worth solving now, then design it. The same applies to research: much of what is published is not production‑ready, and saying so in week one rather than after three months of build is part of what this seat is for.
Adaptability. The domain changes with the product and the methods change faster. Model providers change, agent frameworks are superseded, roadmaps move. Treat the churn as normal rather than as a planning failure.
Accountability. You own the outcome from design to production, not the design. There is no handover at specification. You stay with it through build and evaluation, and if the estimate was wrong it was your estimate. Delegation to the engineering team is not available.
The band is deliberate. Above it we consistently meet people who have optimised for depth in a settled environment, or who have moved far enough from implementation that design has come to mean specification. Neither works here.