Data Engineer

Lupa Pets

London, UKhybridPosted Jun 18, 2026
Posting intelligenceActively listedReposted 6×, possible evergreen/ghost posting

Skills

airflowrocketdockerpythonsparkscalaawsdbtml

About the role

About Us

Lupa is building a category defining product the industry has never seen before.

We’re the AI-native operating system for veterinary practices and pet parents, replacing the fragmented, clunky systems vets have tolerated for years with a single intelligent platform for scheduling, client communication, clinical documentation, and AI-driven care guidance. Practices run more efficiently, vets get back to doing what they love, and pet parents feel more connected to their animals’ health than ever.

The traction speaks for itself: one of Europe’s top 100 AI startups with a team of 50 people, 10x growth in twelve months, the UK market leader, and now charging hard into the US and Europe. We have $25M in funding, 1M+ pets on the platform, and a buzzing HQ in Paddington, London.

This is a rare chance to join a rocket ship at exactly the right moment and we’re looking for exceptional people to help us fly it.

In this role, you will:

Design and build data pipelines from raw ingestion through to clean, modelled, production-ready datasets that engineering and product teams rely on

Own data quality across your domain, defining standards, instrumenting checks, and resolving failures with urgency

Monitor pipeline health in production and respond to issues proactively, not reactively

Collaborate with engineering and product to understand data requirements and turn them into robust, scalable solutions

Help define and evolve the architecture of our data platform as we scale across new geographies and product surfaces

Document your work clearly so the team can understand, extend, and maintain what you build

Your background looks something like:

Multiple years of hands-on data engineering experience in a professional setting

Strong Python skills and a demonstrated ability to build pipelines from scratch, not just extend existing ones

Solid knowledge of data modelling and practical experience with Apache Spark, AWS services, Docker, and Airflow

Experience in a startup or fast-growth environment where you’ve made pragmatic decisions under uncertainty

Scala experience (nice to have, we’re happy to invest in teaching it if your foundations are strong)

Familiarity with dbt, Delta Lake, or similar modern data transformation tooling (nice to have)

Exposure to ML pipelines or feature stores (nice to have)

As a person, you:

Have a proactive, ownership-oriented mindset. You don’t wait to be told something is broken

Take genuine pride in craft and correctness, and hold yourself to a high bar

Collaborate well with engineering teams who consume your data and communicate clearly across functions

Thrive in environments where you’re expected to build from scratch, not inherit a tidy queue of tickets

Are excited to work in-person from our Paddington, London HQ (or equivalent location)

What does success look like in 6 months?

You’ve built and shipped at least two meaningful pipelines end-to-end

You own a defined area of the data platform and are making architectural calls with confidence

The team trusts your judgement without needing to review every decision

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