Lead Data Scientist – Credit Risk Modeling

Company: Klarna
Apply for the Lead Data Scientist – Credit Risk Modeling
Location: London
Job Description:

Overview

In this role you will tackle technically challenging modelling problems in fintech, training transformer-based models on long sequences of real-world transactional data. You will design tokenisation schemes for numerical, categorical, and temporal features and influence how ML operates across Klarna from research to production. You’ll join a small, high-ownership team where your work directly shapes Klarna’s products and ML direction. This is an opportunity to work on scalable, production-grade systems that drive real impact. You will contribute to cutting-edge ML at scale, with a clear mission to advance Klarna’s fintech capabilities.

Responsibilities

  • Train and iterate transformer-based models on long sequences of transactional data
  • Design tokenisation schemes for heterogeneous feature types (numerical, categorical, temporal)
  • Manage the full model lifecycle from data preparation to production serving
  • Translate research decisions into scalable ML systems that steer company-wide ML practices
  • Collaborate in a small, high-ownership team to deliver impactful ML improvements at Klarna

Key requirements

  • Deep understanding of transformer architectures and sequence modelling
  • Hands-on experience designing tokenisation schemes for heterogeneous features
  • Proficiency in Python, PyTorch, SageMaker, and Airflow
  • Experience owning the full model lifecycle from training to production serving
  • Comfort working in a small, high-ownership team on open-ended problems
  • ownership mindset
  • strong problem-solving abilities
  • effective collaboration and communication
  • Transformer architectures
  • Sequence modelling
  • Tokenisation for numerical, categorical, and temporal features

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Posted: September 30th, 2026