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Arlo is seeking a skilled Data Engineer to enhance our data infrastructure by building and maintaining effective data pipelines using AI technology. In this hands-on role, you will collaborate with underwriting and analytics teams to ensure data quality and timeliness.
The ideal candidate should possess 3-5 years of experience in data engineering, proficiency in Python and SQL, and a knack for managing messy datasets. This role not only offers the chance to influence the healthcare sector but also empowers personal and professional growth.
Most of what makes American healthcare expensive isn’t medical care. It’s the machinery wrapped around it: middlemen taking a cut, fraud nobody stops, and billing systems designed to fight over payment instead of deliver care. The result is higher premiums, denied claims, surprise bills, and a system patients increasingly experience as adversarial.
Arlo is rebuilding health insurance for small businesses from first principles: making sure as much of every premium dollar as possible goes to care instead of getting absorbed by the system around it. We do that by identifying fraud earlier, steering members toward higher‑quality and lower‑cost care, automating operational overhead, and eliminating vendors whose business exists mostly to take a cut.
AI is the foundation that makes this work. We use it across underwriting, operations, clinical programs, and member experience to build an insurer that becomes more efficient as the technology improves.
We’re already operating at meaningful scale: profitable, hundreds of millions in premiums, tens of thousands of members covered, and growing quickly through brokers, employers, and partners. Backed by Upfront Ventures, 8VC, and General Catalyst, with a team from Palantir, YC companies, and longtime healthcare operators.
Arlo quotes small businesses using AI‑powered underwriting, and the quality of that underwriting is only as good as the data beneath it. We're hiring a Data Engineer to build and maintain the pipelines, models, and monitoring systems that keep our data infrastructure clean, timely, and trustworthy.
This is a hands‑on individual contributor role. You'll sit at the boundary between data engineering and data science, working directly with underwriting, pricing, and analytics teams to ensure the right data reaches the right systems at the right time.
Pipeline development and maintenance
Data quality and observability
Collaboration with data science
Required
Nice to have
You’ll own your projects end‑to‑end — from initial scoping through to production deployment and ongoing monitoring. There's no separate ML engineering handoff; you'll work directly with the people who depend on your pipelines daily. The role requires equal comfort in Python‑based engineering and SQL‑driven analysis, and a genuine interest in understanding the business context behind the data.
$180,000 - $220,000 + equity
Exact compensation inclusive of salary and any bonuses is determined based on a number of factors including experience and skill level, location, and qualifications which are assessed during the interview process.
Arlo is an equal opportunity employer. We do not discriminate based on age, race, color, creed or religion, national origin, sexual orientation, gender identity or expression, military status, sex, disability, predisposing genetic characteristics, marital status, familial status, status as a victim of domestic violence, or arrest or conviction record, as defined under New York State law.
Your safety matters to us. If you're selected to move forward in our hiring process, you'll hear directly from a member of our Recruiting team via an @joinarlo.com email address. We will never ask for personal or financial information outside of our formal onboarding process. When in doubt, please reach out to us to verify at: recruiting@joinarlo.com.