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Senior Director of Machine Learning Engineering

hellofresh · Berlin, Berlinsenior

In short

  • ▸Liderazgo técnico de un equipo global de 25-30 personas en ML, backend y datos.
  • ▸Enfocado en sistemas de recomendación de beneficios, personalización y predicción de vida útil del cliente con IA integrada.
  • ▸Transformación hacia equipos AI-native y operaciones de alto rendimiento con SLOs y MLOps.

Comfortable with regular travel and bridging US and European hours.

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What they ask for

  • ✓Liderazgo de equipos distribuidos en múltiples países y zonas horarias.
  • ✓Experiencia profunda en ingeniería de ML, incluyendo MLOps, experimentación y infraestructura de entrenamiento/servicio.
  • ✓Conocimiento sólido en sistemas distribuidos y backend para entornos de alto volumen y crítica financiera.
  • ✓Aptitud comercial en dominios de precios, optimización de beneficios y valor de vida del cliente.
  • ✓Experiencia comprobada gestionando múltiples disciplinas técnicas (ML, backend, datos) a escala.
  • ✓Habilidad para desarrollar y escalar prácticas de ingeniería nativas en IA, no solo usar herramientas de IA.

Don't tick every box? That's normal — your free dossier shows your gaps and how to cover them in the interview.

Machine LearningBackend EngineeringDistributed SystemsMLOpsFeature EngineeringTraining/Serving InfrastructurExperimentationCausal InferenceUplift ModelingSubscription/Billing Systems

Who should you write to at hellofresh?

Your free dossier identifies the people who'd interview you — their background, what they value, and how to reach out so you stand out before applying.

The CVO Tribe CVO owns two of HelloFresh's largest economic levers: benefit optimization and pricing . The tribe uses machine learning, personalization, and lifetime-value prediction to replace manual, rules-based decisioning with data-driven systems. The engineering org is globally distributed across Berlin, Warsaw, NYC, Boulder, and Toronto, and includes Frontend, Backend, Data, and ML Engineering, working closely with embedded Data Scientists. The work spans a genuinely mixed engineering profile: ML-heavy systems for benefit recommendation, personalization, and customer lifetime-value forecasting, alongside backend and distributed-systems work powering pricing infrastructure and subscription products at scale. As Senior Director, based in Berlin, you'll lead this full spectrum, setting technical strategy across ML, backend, and data disciplines and across time zones, without relying on daily co-location. What you'll do • Lead an organization of 25-30 engineers, data scientists, and ML practitioners across Berlin, Warsaw, NYC, Boulder, and Toronto, through a layer of Engineering Managers and Staff Engineers reporting into you. • Own ML strategy for benefit recommendation, personalization, and customer lifetime-value forecasting, as well as backend and distributed-systems strategy for pricing and subscription infrastructure. • Drive the transformation of ways of working toward fully GenAI-native, cross-functional product teams, building on teams that already ship the majority of their code with AI assistance. • Own reliability and operational excellence across both ML and backend systems: observability from model output through to customer-facing delivery, SLOs/SLIs, incident management, and MLOps practices such as retraining, rollback, and experiment tracking. • Partner with Product, Data Science, Marketing, Finance, and adjacent engineering teams to align engineering priorities with business outcomes. • Manage and develop Engineering Managers and Data Science Leads across disciplines and geographies, holding them accountable for team health, delivery, and engineering standards. What you'll bring • Range across ML and backend engineering. You don't need to be hands-on expert in both, but you need credibility in each: enough ML depth to set direction on production ML systems and partner effectively with Data Science, enough distributed-systems depth to be a trusted partner on pricing infrastructure and subscription products. • Proven leadership of globally distributed teams across multiple countries and time zones, without daily co-location. Comfortable with regular travel and bridging US and European hours. • Deep ML engineering expertise , including feature engineering, training/serving infrastructure, experimentation, and MLOps. Causal inference or uplift modeling experience is a plus. • Distributed systems and backend depth , including scaling backend services and data pipelines in revenue-sensitive, high-throughput environments. Subscription or billing experience is a plus. • AI-native leadership , with a track record of building or scaling AI-native engineering practices, not just adopting AI tools. • Commercial and pricing domain fluency , or strong aptitude to build it quickly, including benefit optimization, lifetime-value forecasting, and pricing elasticity. • Proven leadership at scale : 12+ years in software/ML engineering, with 5+ years managing Engineering Managers across more than one technical discipline and geography. • Operational excellence mindset , with strong grounding in SRE and MLOps practices for systems with direct financial impact.</li

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