Machine Learning Ops Engineer - Personalization (m

idealo internet GmbH
Berlin, Germany
26 days ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Experience level
Experienced
Experience required
3 years minimum
Working hours
Regular working hours
Languages
English, German

Tech stack

Amazon Web Services Cloud Computing Cloud Engineering Continuous Integration Python (Programming Language) Machine Learning Recommender Systems Azure Machine Learning Search Technologies System Availability Model Validation Machine Learning Operations
+1 more
Terraform

Job description

Everyone at idealo bases decisions on data. Our vision is to transform idealo from a transactional price comparison platform into a personalised shopping companion that inspires users throughout their entire product discovery journey., You will help shape one of idealo’s most strategic product initiatives: Personalisation.

You will work closely with our Data Scientists throughout the entire machine learning lifecycle. While they focus on developing and validating machine learning models, your focus will be designing the cloud infrastructure, ML pipelines and operational tooling that enable these models to run reliably, scale efficiently and continuously improve in production.

In this role, you will:

  • Build and operate scalable machine learning infrastructure on AWS.
  • Design, develop and deploy production-ready ML pipelines covering training, inference, monitoring and automated retraining.
  • Bring machine learning models into production for personalized recommendations, discovery feeds, search ranking and related use cases.
  • Build cloud-native infrastructure using Infrastructure as Code and modern CI/CD practices.
  • Ensure the high availability, observability and operational excellence of ML systems.
  • Collaborate closely with Software Engineers, Data Scientists, Product Managers and UX Designers to continuously improve personalized customer experiences., * And what about the office? Our office in the heart of Berlin offers free organic breakfast, excellent free lunch (vegan and vegetarian), as well as free coffee, lemonades and after-work beer, in addition to the “standard foosball”. It also has a fabulous rooftop terrace with view of the whole of berlin where you can network with colleagues from our group of companies.
  • In need of additional support in any areas of your life? We offer free counseling and support in all areas of life (professional, private, family, health, etc.) in cooperation with the pme-Familienservice.
  • You want full flexibility on your way to work and beyond? No problem with a job bike or Deutschlandticket - and it’s environmentally friendly, too!
  • Want to keep yourself fit? We offer many different fitness and sports options, such as an Urban Sports or Gympass membership, to suit your personal needs.
  • And what else is there? Of course, success must be celebrated! In addition to team events, you can also expect big company events and other moments of organized connection with others in the company and your team throughout the year!

Requirements

  • At least three years of professional experience as a Machine Learning Engineer, Software Engineer or Cloud Engineer, including exposure to production ML systems.
  • Strong Python programming skills and experience building cloud-native solutions, ideally on AWS.
  • Hands-on experience with Infrastructure as Code, such as Terraform or CDK, as well as CI/CD pipelines.
  • Experience with ML platforms such as AWS SageMaker or comparable technologies, including deploying, operating and monitoring models in production.
  • Solid knowledge of machine learning concepts and model evaluation; experience with recommendation systems, search, ranking, vector search or embeddings is a strong plus.
  • Strong communication and collaboration skills across technical and non-technical teams, with excellent written and spoken English; German is a plus.

Apply for this position

This job is hosted externally. Click below to view the full posting and apply.

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