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FutureProofing is hiring an Applied AI/ML Engineer to design, implement, and ship production-ready AI/ML solutions within client product teams. This remote, contract role requires collaboration with cross-functional partners to select models, develop end-to-end pipelines, and integrate AI components into existing systems.
You will experiment with algorithms, train and evaluate models, analyze data, and optimize performance for scalability, reliability, and cost.
FutureProofing builds production-grade AI systems by embedding exceptional senior engineers directly into teams delivering real AI products. The company focuses on end-to-end ownership, rigorous engineering practices, and engineers who operate as true teammates from day one. Through its Remote Engineering Operating System, FutureProofing ensures client-grade communication, behavior standards, and delivery structure for remote work. Engagements feature engineers shipping within the first week, weekly summaries on progress and upcoming work, and a consistent bar for ownership, craft, clarity, and impact. FutureProofing is committed to eliminating stalled demos and non-production prototypes, focusing instead on predictable delivery of high-quality AI systems.
As an Applied AI/ML Engineer at FutureProofing, you will design, implement, and ship production-ready AI and machine learning solutions within client product teams. In this remote, contract role, you will work closely with cross-functional partners to understand requirements, select appropriate models, develop end-to-end pipelines, and integrate AI components into existing systems. Your day-to-day activities will include experimenting with algorithms, training and evaluating models, performing data analysis, and optimizing performance for scalability, reliability, and cost. You will contribute to code reviews, documentation, and architecture discussions, and follow FutureProofing’s communication cadence to provide clear updates, highlight risks, and ensure blockers are resolved quickly. You will be expected to take ownership of deliverables, maintain high engineering standards, and continuously improve tooling and workflows for applied AI development.