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Senior Data Scientist, Payments Intelligence

in 10115, Berlin, Berlin, Deutschland
Unternehmen: Vinted
Vollzeit position
Verfasst am 2026-08-04
Berufliche Spezialisierung:
  • IT/Informationstechnik
    Daten Analyst, Datenwissenschaftler, Maschinelles Lernen, Künstliche Intelligenz Ingenieur
Gehalts-/Lohnspanne oder Branchenbenchmark: 69700 - 94300 EUR pro Jahr EUR 69700.00 94300.00 YEAR
Stellenbeschreibung

Brief Info About Vinted

Our mission is to make second‑hand the first choice, and we're looking for people who want to help us get there. Every day, we work together to help our members buy and sell pre‑loved clothing and lifestyle items, giving each piece a second life – or even a third.

About Vinted

  • Vinted Marketplace is Europe’s leading platform for second‑hand fashion and a go‑to destination for all kinds of pre‑loved items, with a growing range of categories. Our platform connects millions of members across 20+ markets, helping great items find a new life.
  • Vinted Go enhances the shipping experience with a vast network of over 500,000 pick‑up and drop‑off points, partnering with more than 60 carriers across Europe, with added services like item verification for peace of mind on high‑value pieces.
  • Vinted Pay is the newest part of the Vinted Group, dedicated to bringing secure, reliable payments to buyers and sellers across Europe. Seamlessly integrated into the Vinted app, it helps keep every transaction safe, efficient, and easy for our members.
  • Founded in 2008 in Lithuania, Vinted began as a way for friends to find new homes for clothes they no longer needed. In 2019, we became Lithuania's first unicorn! Today, our headquarters remain in Vilnius, and we've grown with offices across Europe, supported by a team of over 2,000 people. Our backers include Accel, EQT Growth, Insight Partners, Lightspeed Venture Partners, Sprints, and TPG.
Information

About The Position

In this role you will become a part of the Payments Intelligence team in Vinted’s Payments business unit. This team consists of a mix of Analytics Engineers, Decision Scientists and Data Scientists and works together with the product and engineering teams in the business unit as well as other teams across the whole DSA function on cross‑domain topics. The Payments business unit consists of two domains:
Marketplace Payments and Vinted Pay. Marketplace Payments is responsible for everything that is needed to make it possible to pay for items on Vinted while Vinted Pay is a brand new payment service provider that we are building.

As a Data Scientist in the Payments Intelligence team, you will use data science tools techniques and engineering tools to solve various payment‑related challenges. This distributed team spans Vilnius and Berlin and focuses on data science, decision science, and analytics engineering within the Payments domain. You will collaborate with engineers, product managers and data colleagues across the company.

Roles within the DSA Function
  • Analytics Engineers – responsible for data curation – translating data needs from stakeholders into architecting, building and maintaining efficient & reliable data models and pipelines.
  • Decision Scientists – responsible for actionable insights, identifying and sizing opportunities, and automated tools that increase the quality of product and business decisions by applying statistical methods and data‑driven decision making.
  • Data Scientists – responsible for identification of algorithmic opportunities, ensuring those opportunities are addressed in an optimal fashion and design, development and maintenance of production‑grade statistical and machine learning algorithms.
In This Position, You’ll
  • Work with the payments anti‑fraud team on the fraud classification engine
  • Design and implement ML solutions related to transaction monitoring, anti money laundering, operations automation and other areas
  • Work on and improve the data and ML infrastructure of the Payments business unit
  • Understand business, product and operational problems, find opportunities, gather requirements for ML and automation projects and communicate these findings to your colleagues and stakeholders
About You
  • Have industry experience in data science or a similar field (ideally 3‑5 years)
  • Hands‑on experience working with ML models in production
  • Experienced in Python, Jupyter and the PyData stack
  • Excellent written and spoken English
  • Have experience with SQL and relational databases
  • Strong understanding of statistics and ML theory
  • Have experience with at least one of AWS, GCP, Azure or other cloud platforms
  • Enjoy contributing as a supportive…
Stellen-Anforderungen
10+ Jahre Berufserfahrung
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