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Platform Engineer Data & ML

Job in 1000, Amsterdam, North Holland, Netherlands
Listing for: BridgeFund
Full Time position
Listed on 2026-06-16
Job specializations:
  • IT/Tech
    Data Engineering, AI Engineer (Applied/Software), Machine Learning/ ML Engineer
Salary/Wage Range or Industry Benchmark: 60000 - 80000 EUR Yearly EUR 60000.00 80000.00 YEAR
Job Description & How to Apply Below

Are you a platform engineer ready to scale your impact, work with cutting‑edge tech, and see your work directly drive real‑world financial decisions? At Bridgefund we are looking for a Platform Engineer Data & ML to help build and optimize the platform powering our automated lending.

Your role

As a Platform Engineer - Data & ML, you are the technical architect behind the liberation of money. By building a high-performance data platform, you directly enable Bridge Fund's mission to move capital out of stagnant banks and onto the "work floor". You bridge the gap between complex data and real-world impact, designing the automated systems that allow entrepreneurs to skip the "human bottlenecks" and get a decision in record time.

To fulfill this vision, your goal is to turn messy data into a standardized, production-grade ecosystem. By architecting a platform that powers 200+ production workflows and 30+ ingestion pipelines through medallion layers on Databricks, you ensure our financing remains simple, fast, and fair. Your focus on MLOps foundations and data contracts provides the reliability needed to scale our impact. Ultimately, you aren't just managing infrastructure;

you are building the bridge that gives entrepreneurs their autonomy back.

Responsibilities
  • Build the MLOps Platform that powers credit risk scoring, automated lending decisions, and transaction categorisation. This platform supports the full ML lifecycle from feature engineering to production inference.
  • Drive performance and cost optimisations for heavily computational Spark jobs and improve scalability of the data & ML platform.
  • Drive adoption of platform standards like ingestion frameworks, data modelling conventions, data contracts, and ML operations patterns (feature stores, model registry, reusable training/inference pipelines).
  • Architect CI/CD infrastructure, shared tooling, and multi‑environment deployment strategies across a growing multi‑repo ecosystem.
  • Strengthen data governance, access controls, security practices, and SDLC maturity. Support data science teams in adopting these standards.
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