Machine Learning Engineer

Capgemini

Brussel Hoofdstad

Hybride

EUR 70 000 - 100 000

Plein temps

Il y a 9 jours
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Résumé du poste

Capgemini is seeking a Machine Learning Engineer in Belgium to drive the industrialization of AI solutions and ensure production-ready ML development. You will bridge AI/Analytics with IT production, supporting data pipelines, infrastructure, automation, and monitoring across the full lifecycle of AI services.

Ideal candidates have strong Python, containerization, CI/CD experience, and proficiency with PostgreSQL, Spark, and ETL/ELT tools within Agile teams, with English mandatory and

Qualifications

  • Strong experience with containerization and virtualization (Docker, VMs).
  • Experience with AI platforms and development environments.
  • CI/CD pipelines, preferably GitLab CI.
  • Code, data, and model versioning practices.
  • Advanced Python development.
  • Package management and dependency management.
  • PostgreSQL.

Responsabilités

  • Collaborate with Data Scientists to define production-ready ML solutions meeting business and production constraints.
  • Support infrastructure and model serving, including data ingestion patterns and API design.
  • Industrialize ML pipelines with containerization, testing, and CI/CD integration.
  • Work with IT Production teams to configure and parameterize target environments.
  • Ensure models in production run reliably, retrain when needed, and are monitored for IT and business factors.

Connaissances

Containerization/Virtualization
AI platforms
GitLab CI
Python development
Versioning
PostgreSQL
Big dataSpark
ETL/ELT

Outils

Docker
VMs

Description du poste

Job Description – Machine Learning Engineer
Mission & Context

The Machine Learning Engineer plays a key role in enabling the industrialization of Machine Learning and AI solutions within the enterprise. The mission of the role is to promote and apply best practices in production‑ready ML development, ensuring that AI solutions are robust, scalable, monitored, and fully integrated into IT production environments.

Machine Learning Engineers bridge the gap between AI & Analytics teams and IT production, ensuring that Machine Learning models deployed to production are supported by appropriate data pipelines, infrastructure, automation, and monitoring from both a technical and business perspective.

They contribute to the full lifecycle of AI services, from design and development to deployment, monitoring, and continuous improvement.

Key Responsibilities

Machine Learning Engineers contribute to Machine Learning projects by:

  • Collaborating closely with Data Scientists to define and develop solutions that meet business requirements while taking production constraints into account (e.g. performance, scalability, latency, data volumes).
  • Supporting the selection of appropriate infrastructure and serving models, including data ingestion patterns, synchronization models, and API designs (real‑time vs batch processing).
  • Contributing to the automation and industrialization of ML pipelines, including:
  • Containerization and image creation (Docker / VMs)
  • Preparation of unit, regression, and integration tests
  • CI/CD integration for ML components
  • Supporting Data Scientists in the use of existing industrial platforms and CI/CD tools to build, deploy, and monitor AI services.
  • Working closely with IT Production teams to support the configuration and parameterization of target environments.
  • Ensuring models in production:
  • Run reliably and without errors
  • Are retrained when required (including automated retraining where applicable)
  • Are monitored from both IT (technical) and business (performance, quality) perspectives.
Agile & Delivery Context

The Machine Learning Engineer typically works in Agile delivery environments, contributing within cross‑functional teams that combine analytics, engineering, and testing expertise. The role requires close collaboration, continuous feedback, and a strong delivery mindset focused on stable and reusable solutions.

Required Experience & Knowledge
Experience
  • Minimum 4 years of relevant experience as a Machine Learning Engineer, ML Platform Engineer, or similar role
Technical Skills
Mandatory
  • Strong experience with containerization and virtualization (Docker, VMs)
  • Experience with AI platforms and development environments
  • CI/CD pipelines, preferably GitLab CI
  • Code, data, and model versioning practices
  • Advanced Python development
  • Package management and dependency management
  • PostgreSQL
Preferred
  • Experience integrating systems across different technologies (distributed systems, mainframe environments)
  • Model optimization and compression techniques
  • ELT / ETL tools
  • Big data technologies (e.g. Apache Spark)
  • Data flow processing frameworks
  • Data visualization tools
Business & Methodology
Mandatory
  • Practical knowledge of Agile methodologies
Language Requirements
  • English: mandatory
  • Dutch: nice to have
  • French: nice to have
Working Model
  • 50% on‑site / 50% remote working arrangement
Soft Skills
  • Strong communication skills (verbal and written)
  • Results‑driven with a strong sense of ownership
  • High attention to detail and rigor
  • Creative and analytical problem‑solving mindset
  • Proactive in continuous learning and knowledge sharing
  • Awareness of efficiency and quality of delivery
  • Ability to think beyond existing processes and frameworks
  • Positive, energetic, and collaborative team player
  • Open to change, feedback, and diverse perspectives
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