Senior ML Software Engineer - Growth & Lifecycle / Lounge by Zalando (all genders)

Zalando GmbH

Berlin

Vor Ort

EUR 110.000 - 150.000

Vollzeit

14 Tage+
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Benefits dieser Stelle

Employee shares program
40% off fashion products
Volunteer days
27 days vacation
Relocation assistance
Wellbeing options
Mental health support
Training platform

Zusammenfassung

Zalando Lounge by Zalando in Berlin is seeking a Senior ML Software Engineer to own and scale our machine-learning systems behind growth campaigns. You’ll build feature pipelines, train and evaluate models, and deploy scalable batch inference that drives personalized messages across channels with rigorous A/B testing.

You’ll collaborate with principal engineers and partner data-science teams, implementing production-ready pipelines in Spark/Databricks and pushing toward autonomous,

Qualifikationen

  • Proven track record productionising machine learning systems.
  • Experience building feature pipelines and training workflows for large-scale data.
  • Knowledge of inference serving and model deployment in cloud environments.

Aufgaben

  • Own personalisation end to end across channels, extending production models to email or other touchpoints.
  • Design and implement feature engineering in Spark/Databricks against campaign and behavioural data.
  • Operate scalable batch/inference serving, optimize throughput and cost.
  • Build tracking, attribution, and A/B testing for lift from personalisation.

Kenntnisse

ML engineering
Python
Spark/Databricks
AWS (SageMaker)
Kubernetes
CI/CD
A/B testing
Observability
MLOps

Tools

Spark
Databricks
Kubernetes
SageMaker

Jobbeschreibung

Lounge by Zalando is an online shopping club for fashion and lifestyle products, serving millions of members across 20+ European markets through daily, time-limited sale campaigns. The Growth & Lifecycle team is the growth engine of Lounge - turning anonymous traffic into registered members and one-time buyers into active, high-lifetime-value customers. Personalisation is at the heart of that: deciding which campaigns each member sees, and in which order, across push, email, and on-site touchpoints.

We're looking for a Senior ML Software Engineer to own and grow the machine-learning systems behind this. You'll take our campaign-ordering personalisation from a single channel to many - starting by bringing it to email via Braze - building the feature pipelines, training and evaluation workflows, and scalable batch inference that make it work, and proving the impact with rigorous A/B testing. You'll work in tandem with our Principal Engineers, product managers, and partner data-science teams, and you'll build the way our team builds: heavily leveraging AI coding agents to move fast without cutting corners.

Your mandate: put personalisation to work across every Lounge channel - owning the feature, training, and inference pipelines that decide the right message for every member, and proving the lift.

INCLUSIVE BY DESIGN

If you think you have what it takes, we encourage you to apply even if you don't meet every single requirement. You may just be the right candidate for this or other roles!

At Zalando, our vision is to be the leading pan-European ecosystem for fashion and lifestyle e-commerce - one that thrives on diversity and is truly inclusive by design. We believe that diverse teams fuel innovation and creativity, and we actively seek out talent from all backgrounds.

We actively seek to reduce bias in our hiring and employment processes, focusing on your qualifications, skills, and contributions. To support this, we kindly ask that you refrain from including personal details such as your photo, age, or marital status in your CV, ensuring a fair and equitable evaluation based solely on your abilities and potential.

We are committed to providing an exceptional and accessible candidate experience for everyone. If you require any accommodations to support you throughout the hiring process, please let us know - we are here to assist you.

WHAT WE'D LOVE YOU TO DO (AND LOVE DOING)

Own personalisation end to end: Take our campaign-ordering ranking system from one channel to many - taking ownership of a proven production model, extending it to email via Braze, and evolving it into a system our team fully owns and iterates on.

Build feature and training pipelines at scale: Design and implement feature engineering in Spark/Databricks against our campaign and behavioural data, backed by a feature store - with the audits, golden examples, and parity checks that let you prove a rewritten pipeline matches the system it replaces.

Run inference in production: Operate scalable batch (and, where it fits, real-time) inference serving millions of requests, tuning for throughput and cost, and integrating the ranked output into our lifecycle messaging so it reaches members at the right moment.

Prove the impact: Build the tracking, attribution, and A/B testing that measure personalised vs. non-personalised outcomes, and make incremental lift - not vanity metrics - the definition of success.

Connect models to the growth engine: Wire data-science models (churn, next-best-action, propensity) into real customer touchpoints, and help push our roadmap from copilots toward autonomous, self-optimising marketing.

Raise the bar and grow others: Design for testability and reliability, lead production-readiness reviews for your area, propose and implement technical standards, and mentor mid-level and junior engineers as a senior technical voice on the team.

Strong ML engineering experience: A solid track record productionising machine learning - building and operating feature pipelines, training workflows, offline evaluation/backtesting, and model serving - not just prototyping in notebooks.

Big-data fluency: Hands-on expertise with distributed data processing (Spark, ideally on Databricks) and the feature engineering that recommendation, ranking, or personalisation systems depend on - aggregations, recency windows, matching logic, and metadata joins at scale.

Production Python: Deep, professional Python for ML systems; comfortable owning the full lifecycle from data to deployed inference. Exposure to a JVM language (our wider platform is Kotlin) is a plus.

Cloud-native ML ops: Experience running ML on AWS (e.g. SageMaker or comparable serving), with Kubernetes, CI/CD, observability, and a genuine ownership mindset - you build it, ship it, and keep it healthy.

Experimentation rigor: You measure what you build - A/B testing at scale, incrementality, and offline/online evaluation you can defend.

AI-native ways of working: You use AI coding tools and agent-assisted workflows as a core part of how you engineer - it's how our team moves, from transpiling feature logic to accelerating validation.

Senior collaboration: You explain complex technical concepts clearly to non-specialists, drive cross-team projects, resolve ambiguity, and lift the engineers around you.

OUR OFFER

Zalando provides a range of benefits, here's an overview of what you can expect.

  • Employee shares program
  • 40% off fashion and beauty products sold and shipped by Zalando, 30% off Lounge by Zalando, discounts from external partners
  • 2 paid volunteering days a year
  • 27 days of vacation a year to start for full-time employees
  • Relocation assistance available (subject to prior agreement)
  • Family services, including counseling and support
  • Health and wellbeing options (including Wellhub, formerly Gympass)
  • Mental health support and coaching available
  • Drive your development through our training platform and biannual peer-to-peer review
Software Engineering

Our Software Engineering teams deploy software extensively, managing a broad set of applications and conducting thousands of deployments per week. The Software Engineering team enables Zalando as Europe's number one multi-brand, digital platform for fashion, beauty, and lifestyle for our partners and customers. As a Zalando Software Engineer, you'll be part of a community of thousands of colleagues across Europe.

It's the perfect time to join Zalando on our journey to build the leading pan-European ecosystem for fashion and lifestyle e-commerce. Help us offer an inspiring and quality multi-brand shopping experience for fashion and lifestyle products to about 50 million active customers in 25 markets. Or be part of our logistic infrastructure, software or service capabilities to help brands and retailers run and scale their entire e-commerce business, on or off Zalando. Join our Zalando ecosystem, to enable positive change for the fashion and lifestyle industry.

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