Proficiency in Python, Java, and modern software engineering practices;
Experience with containerisation and orchestration tools such as Docker and Kubernetes;
Hands-on experience with AI and ML libraries (e.g. scikit-learn, TensorFlow, pandas);
Familiarity with distributed data processing (e.g. Apache Kafka, Airflow);
Knowledge of DevOps tools and CI/CD workflows (e.g. Jenkins, GitHub Actions);
Ability to design system-level monitoring and observability frameworks (e.g. Grafana, Prometheus);
Experience developing and documenting technical architecture for data and analytics systems;
Capacity to communicate across technical and policy domains in a collaborative environment.;
Autonomy in delivering model-based analytics aligned with architectural and business needs.;
The following specific expertise is required:
• At least 3 years of experience in software or data engineering, including applied work in AI/ML contexts;
• Demonstrated experience in designing and implementing full data pipelines in production environments;
• Proven capacity to deploy and monitor intelligent systems within modular and distributed architecture;
• Familiarity with real-time, event-driven, or edge-oriented system architectures;
• Contributions to the implementation of analytics infrastructure that is modular, testable, and scalable;
• Background in intelligent mobility, cloud robotics, or automation considered a strong asset..
Level : Intermediate
Delivery mode : Near Site (Brussels)
Deadline 15.12.25
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