Machine Learning Engineer (m/f/x)

Posted 26 Days Ago
Be an Early Applicant
Berlin, DEU
In-Office
Senior level
Information Technology • Internet of Things
The Role
Own machine learning models from handoff through production, including packaging, deployment, serving, monitoring, drift detection, alerting, and incident response. Review model design and evaluation quality, identify leakage and temporal validation issues, and improve the shared ML platform. Establish engineering standards, ensure feature-store parity, and mentor or review colleagues while operating production AWS infrastructure.
Summary Generated by Built In

Four models in production today. Fifteen to twenty by mid-2027. The shared pipeline that gets them there has to hold — and you own everything after handoff: packaging, deployment, drift detection, and the call on whether a model is fit to serve.

Location: Central Berlin — you work from our office, hybrid with 3 days office and 2 days home office.

 About us

CarOnSale is the AI-powered platform for B2B used car trading in Europe. Over 40,000 buyers from more than 20 countries trade on our platform — and 85% of inventory is exclusive to us. We connect software, pricing intelligence, logistics and financing in one layer — as the operating system for an entire industry.

One Platform. One Profit Engine.

 The platform you build in

Our machine learning runs on one shared, central platform — not a separate pipeline per model. Five canonical stages: data extraction, validation, transformation, training and evaluation. A Snowflake data warehouse feeds a SageMaker managed feature store, and models reach production through governed CI/CD promotion lanes on Terraform-managed AWS infrastructure. Your job is to build inside it and make it stronger, so the next model costs less to ship than the last one.

 Your responsibilities
  • You own models from handoff through to production: packaging, deployment, monitoring, and the decision on whether a model is ready to serve
  • You keep production models reliable — drift detection, performance monitoring, alerting and incident response when something moves
  • You own the serving and inference path: fitted pipeline artifacts, inference entry points, monitoring hooks and feature-store parity
  • You review model design and evaluation methodology before anything ships, and catch data leakage, backward-window errors and weak evaluation during development, while they are still cheap to fix
  • You extend the shared platform so it stays useful for every model, without project-specific logic leaking into shared code
  • You set the engineering standards the platform runs on as it scales across the organisation
 What you bring
  • 2+ years in production machine learning engineering, with real ownership of models after handoff — not only training them
  • Strong Python: typed, tested, production-grade code, and you review the work of others
  • Enough machine learning depth to challenge a pipeline on problem framing, feature engineering, model selection and evaluation methodology
  • Hands-on experience with a managed ML platform — SageMaker, Vertex AI, Databricks or Azure ML — plus feature stores, CI/CD for machine learning, AWS and Terraform
  • An AI-native way of working: you use tools like Claude, ChatGPT or Copilot actively in your daily work
  • English at C1 level, written and spoken. German is not required — we work in English

Nice to have

  • Snowflake and dbt — you can pick both up here
  • Experience mentoring colleagues or reviewing their work
  • Comfort operating where the answer is not defined yet
What to expect from us
  • Hybrid working: 3 days in office, 2 days remote – plus 25 "Work from Anywhere" days per year
  • 28 days annual leave
  • 2× annual career & development conversations
  • Company pension with 20% employer contribution
  • Fully paid Deutschlandticket (public transport)
  • FitX membership or Urban Sports Club subsidy
  • Virtual stock options — share in the upside
  • Modern IT setup for your day-to-day work
  • Structured onboarding with buddy programme and social events
  • Lived diversity: active women's network, meditation & prayer room

Apply now — your CV is enough.

Skills Required

  • 2+ years of production machine learning engineering experience with ownership after model handoff
  • Strong Python skills, including typed, tested, production-grade code
  • Machine learning expertise in problem framing, feature engineering, model selection, and evaluation methodology
  • Hands-on experience with a managed ML platform such as SageMaker, Vertex AI, Databricks, or Azure ML
  • Experience with feature stores and CI/CD for machine learning
  • Experience with AWS and Terraform
  • Active daily use of AI tools such as Claude, ChatGPT, or Copilot
  • English proficiency at C1 level, written and spoken
  • Experience with Snowflake and dbt
  • Experience mentoring colleagues or reviewing their work
  • Comfort operating in ambiguous situations
Am I A Good Fit?
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The Company
HQ: Berlin
139 Employees
Year Founded: 2018

What We Do

Our vision is to make automotive wholesale frictionless across Europe. We developed an innovative marketplace to connect buyers and sellers. We are ambitious, digital and reliable. We are committed to provide our customers with the easiest, most profitable and personal solution. Together with our ambitious team, we set new standards in the remarking of used cars. We are looking for talents who believe in our vision and support us in the digitization of automotive wholesale. If you are looking for a place to realize your full potential and grow beyond your limits - COS is your place! CarOnSale (Castle Tech GmbH) Hauptstraße 27 Haus 9 Aufgang N 10827 Berlin ‍ Managing Director: Tom Krüger Phone: +49 30 311 96 400 E-Mail: [email protected] ‍ Registry court: Charlottenburg Local Court (Berlin), HRB 213350 B Sales tax identification number according to §27a Umsatzsteuergesetz: DE320199054 Tax number: 241/123/11331 Privacy policy https://www.caronsale.com/de/datenschutz

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