Machine Learning Engineer - Insurance AI job opportunity at Nearmap.



Date2026-03-11T21:45:48.013Z bot
Nearmap Machine Learning Engineer - Insurance AI
Experience: General
Pattern: Full-time
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degreeGeneral
loacation 6790 Embarcadero Lane, Carlsbad, California, United States Of America
loacation 6790 Embarcade..........United States Of America
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Job DescriptionAbout the RoleWe're looking for a Machine Learning Engineer to join our Insurance AI team. You'll be the engineering backbone for our Data Scientists, building and maintaining the ML infrastructure that turns models into reliable, scalable products.This isn't a greenfield build-everything-from-scratch role. Our Sydney-based AI & Computer Vision team has built robust ML tooling and pipelines. Your job is to extend, adapt, and maintain that infrastructure for US-specific use cases. If you're someone who gets satisfaction from making existing systems work better rather than reinventing the wheel, keep reading.You'll work closely with Data Scientists in the US and ML Engineers in Australia, acting as the technical bridge that keeps both teams moving fast.What You'll DoYou'll own the ML engineering function for the US Insurance AI team. That means building data and model pipelines, integrating with internal and external APIs, and making sure our Data Scientists have the tools they need to ship models to production. You'll collaborate daily with our Sydney AICV team to leverage shared infrastructure and contribute improvements back.Day to day, you'll write Python, wrangle data pipelines, debug production issues, and translate Data Scientist requirements into working systems. You'll use AWS, work with cloud-native technologies, and operate within an established MLOps framework.Key ResponsibilitiesBuild and maintain ML pipelines for data ingestion, feature processing, model training, deployment, and monitoring in AWSExtend and adapt existing tooling from our Sydney AICV team for US Insurance AI use casesDevelop and support internal tools and frameworks that streamline experimentation and improve delivery speedIntegrate internal and external APIs to connect datasets, models, and servicesPartner with Data Scientists to understand their workflow needs and translate them into scalable technical solutionsEnsure infrastructure supports rapid experimentation while maintaining reliability, security, and scalabilityCollaborate with Technical Product Managers, API engineers, and platform teams to deploy models in productionContribute to a shared codebase through feature branches, pull requests, and code reviews

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