Staff Machine Learning Engineer

Postaladdress
Germany
4 days ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Experience level
Expert
Experience required
5 years minimum
Working hours
Regular working hours
Languages
English
Job source

Tech stack

A/B Testing Data Analysis Data Infrastructure Python (Programming Language) Machine Learning Backtesting Standard Sql Toolchain Management of Software Versions Snowflake

Job description

You will take on technical leadership and end-to-end ownership for our Pricing/Revenue-ML topics-with a clear focus on measurable impact. You will work closely with Product and Engineering, define measurability/experiments, and ensure that our models not only “look good” but also perform reliably in practice., * End-to-End Ownership: You are responsible for the entire lifecycle of pricing and revenue topics-from hypothesis to implementation to measurable evaluation. Your focus: Clear business uplift.

  • Smart Modeling: You develop and optimize forecasting and pricing models. You pragmatically decide which method gets us to the goal fastest and most stably.
  • Signal Expertise: You manage time series, demand signals, and heterogeneous data sources. You ensure that features and labels are defined absolutely clean and “leakage-proof.”
  • Experimentation Framework: You build a robust measurement system (holdouts, A/B tests, guardrails) and define crystal-clear criteria for rollout decisions.
  • Engineering-Grade ML: You establish standards for backtesting, reproducibility, and versioning. For us, it’s: Engineering quality instead of notebook-only.
  • Reliable Operations: You ensure operations through smart monitoring, drift detection, and pragmatic retraining mechanisms.
  • Automation & Scale: You automate high-leverage processes (backtests, monitoring checks) to massively increase throughput and quality.
  • Data Foundation: Where it makes sense, you design data models directly in the warehouse (Snowflake/dbt) as a basis for reliable metrics and features.
  • Full Transparency: You standardize dashboards (e.g., Metabase) for our business KPIs and ensure the data quality is beyond reproach.
  • Stakeholder Sparring: You prioritize requirements together with Product & Revenue and translate them into ML solutions. Your motto: Impact over output.

Requirements

  • Deep Experience: You have 5+ years relevant experience in ML Engineering, Data Science, or Analytics (or an equivalent track record that convinces us).
  • Proven Impact: You have already achieved demonstrable success in the areas of pricing, revenue, forecasting, or similar “money systems.”
  • Evaluation Pro: You think offline vs. online, immediately recognize bias/leakage, and master the fundamentals of robust metrics and guardrails.
  • Tech Stack: Your Python and SQL skills are production-level (testable, versioned, reproducible).
  • Startup DNA: You love the 80/20 principle, work extremely pragmatically, and want full ownership for your topics.
  • Language Skills: You communicate fluently and confidently in English.

Bonus Points (Nice-to-haves)

  • Domain Knowledge: Experience in revenue management or dynamic pricing (e.g., travel, mobility, eCommerce).
  • Demand Understanding: You know how seasonality, events, and lead times affect pricing.
  • Modern Toolchain: You are proficient in analytics engineering (dbt, Snowflake, Metabase) and know how to build a clean data foundation.

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