Job Description
ABOUT ROCKET MONEY 🔮 Rocket Money's mission is to empower people to live their best financial lives. Rocket Money offers members a unique understanding of their finances and a suite of valuable services that save them time and money – ultimately giving them a leg up on their financial journey. ABOUT THE TEAM 🤝 Machine Learning Engineers on the Data team at Rocket Money further our mission by building products that deepen customer relationships with our many financial products. Our work ranges from transaction enrichment to personalization engines to cross-functional tools that support our mortgage and personal loan products. We work closely with product and engineering teams to develop features that help customers understand, track, and improve their personal finances. We have a strong preference for team players that are comfortable collaborating across teams, know how to support strategy with ML powered user experiences, can deliver solutions within engineering teams, and understand the effects of their products on end users. Machine Learning Engineers have a strong focus on designing, engineering, and scaling cutting-edge ML solutions, but are also not afraid to do data prep and iterate on model development. ABOUT THE ROLE 🤹♀️ Develop and maintain reusable ML pipelines and systems, ensuring models are well-integrated with other systems via comprehensive testing and documentation. Collaborate closely with cross-functional teams to provide critical input on technical direction. You will use your ML skills to enhance user experiences and meet business needs by collaborating on strategy in addition to technical implementation. Strong focus on model monitoring and optimization, building systems for performance tracking, drift detection, alerting, and resource optimization. Set up deployment infrastructure including setting up APIs and implementing automated monitoring and deployment processes. Be a steward of good instrumentation and experimental design — design systems to measure the impact of ML powered products in a way that is measurable, testable, repeatable, and robust. Establish evaluation criteria for ML use cases, including but not limited to fine-tuned LLMs. Build and manage data labeling and data ingestion frameworks, optimizing workflows to improve the agility of data pipelines and data scientists' experiences. Become an expert on our members. Understand their needs and financial goals. Work with product to define strategy and engineering teams to create software and build features that help our members build better financial lives. Maintain a high technical bar by mentoring junior team members, participating in code reviews, and ensuring quality in production systems. Potential Projects Create, diagnose, and evaluate LLM agents that successfully cancel and negotiate cancellations for our users. Uncover and exploit relationships between customers’ subscriptions, purchase, and transaction data as you build personalized product experiences and power ever more accurate customer segmentation, propensity, and affiliate targeting models. Build anomaly detection systems, ensuring that our transaction categorization systems produce accurate data for our users and tracking when they don’t. ABOUT YOU 🦄 You have 5+ years of professional experience working in a data science or machine learning engineering capacity. You are proficient in SQL, Python and have s
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YouGotJobs keeps this U.S. listing in the public index because it has an active source link, readable role details, and recent freshness signals checked on May 3, 2026. No reliable salary range was published with this listing. The role is associated with San Francisco, CA, Washington, D.C., New York City, N.Y., Miami, FL. Apply details are verified against job-boards.greenhouse.io.
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