Lead Machine Learning Engineer, Lifetime Value

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πŸ•’ May 29

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Logo of Root Inc.

Root Inc.

1001 - 5000 employees

Founded 2015

πŸ’Έ Finance

πŸ‘₯ B2C

πŸ’° $200M Post IPO debt on 2024-11

Finance β€’ B2C

Root Inc. is an auto insurance company that uses a mobile app and smartphone sensor telematics to measure driving behavior and price policies primarily based on how safely customers drive. The company offers a "test drive" period to gather driving data, provides in-app quotes, policy management, and claims filing, and sells roadside assistance and other coverages across many U. S. states. Root targets consumer drivers (B2C) seeking usage-based insurance and emphasizes savings for safer drivers.

πŸ“‹ Description

β€’ Build and improve the systems that power customer lifetime value modeling, from development and deployment through monitoring and production support. β€’ Partner with data scientists to productionize statistical models, simulations, and forecasting workflows that support decision-making across the business. β€’ Accelerate the path from research to production through scalable infrastructure, reliable workflows, and reusable tooling. β€’ Improve the ML development experience by building better operational patterns and advancing production-ready ML practices. β€’ Develop tools and services that help stakeholders evaluate model performance, understand business impact, and trust model outputs in production. β€’ Collaborate with technical and business partners to solve high-value problems and improve the reliability and scalability of ML systems. β€’ Share best practices through mentorship, documentation, and clear communication around technical decisions, tradeoffs, and operational considerations.

🎯 Requirements

β€’ BS in Computer Science, Statistics, Mathematics, Engineering, or a related quantitative field. β€’ 5+ years of experience designing, building, deploying, and maintaining machine learning systems and ML model pipelines in partnership with data scientists. β€’ Strong Python and software engineering fundamentals, with the ability to build maintainable ML systems and production-quality code. β€’ Experience building and operating production ML systems, including deployment, monitoring, debugging, and workflow orchestration. β€’ Ability to design reproducible systems with clear lineage, versioning, and operational visibility across complex ML workflows. β€’ Comfort working in ML systems with interconnected components, simulation-driven logic, and embedded business rules. β€’ Strong judgment around model evaluation, code quality, system reliability, and maintainable engineering tradeoffs. β€’ Experience with cloud-based ML infrastructure and data platforms such as AWS, GCP, or Azure. β€’ Experience with infrastructure as code, such as Terraform. β€’ Clear communication skills and the ability to explain technical tradeoffs to both technical and non-technical audiences.

πŸ–οΈ Benefits

β€’ Eligible for Competitive Bonus & Equity Offering

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