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Data & MLOps Engineer (Mid-level) m/f

ARHS Group Part of AccentureBelvaux, Esch-sur-AlzetteLuxembourgPosted 8 Aug 2026

Quick Overview

Work Type
On Site
Schedule
Full Time
Level
Mid Senior

Job Description

ARHS Group, part of Accenture, is looking for a Data & MLOps Engineer (Mid-level) to join our internal team in Luxembourg.

In this role, you will design, build, and operate production-grade data and machine learning pipelines. Working closely with data scientists, software engineers, and cloud specialists, you will help transform analytical and ML prototypes into secure, scalable, and production-ready services while contributing across the full data and MLOps lifecycle.

THE WORK:

  • Build and maintain data pipelines for ingestion, validation, transformation, and delivery of structured and unstructured data.
  • Industrialize machine learning workloads by packaging models, automating deployments, and ensuring reproducible environments.
  • Implement MLOps practices, including experiment tracking, model versioning, model registries, automated testing, approval workflows, and rollback strategies.
  • Develop and operate APIs and batch services exposing data products and machine learning capabilities.
  • Build and maintain CI/CD pipelines for data and ML solutions.
  • Deploy containerized workloads using Docker, Kubernetes, and managed cloud services.
  • Implement observability through monitoring, logging, metrics, data quality checks, drift detection, and alerting.
  • Collaborate with data scientists and business stakeholders to deliver production-ready solutions.
  • Contribute to infrastructure automation using Infrastructure as Code tools such as Terraform and Ansible.
  • Produce technical documentation and contribute to knowledge sharing across engineering teams.

Our roles require in-person time to encourage collaboration, learning, and relationship-building with clients, colleagues, and communities. As an employer, we will be as flexible as possible to support your specific work/life needs.

HERE'S WHAT YOU'LL NEED:

  • 3-5 years of experience in Data Engineering, Software Engineering, Cloud Engineering, or MLOps.
  • Strong programming skills in Python and SQL, with a solid understanding of REST APIs and software engineering principles.
  • Experience designing and operating ETL/ELT pipelines using tools such as Airflow, Azure Data Factory, AWS Glue, Databricks, dbt, or equivalent.
  • Hands-on experience with MLOps concepts, including model packaging, model serving, experiment tracking, and lifecycle management.
  • Experience with Azure and/or AWS cloud platforms.
  • Good knowledge of Docker; experience with Kubernetes and Helm is a strong asset.
  • Experience with Git-based CI/CD, Infrastructure as Code, Terraform, and/or Ansible.
  • Familiarity with relational databases and object storage; exposure to Kafka, NoSQL databases, or event-driven architectures is a plus.
  • Experience with monitoring, logging, troubleshooting, and operational best practices.
  • Understanding of secure software engineering and data governance principles.
  • Fluency in French is mandatory, with a good command of English.

BONUS POINTS IF YOU HAVE:

  • Knowledge of machine learning fundamentals and model lifecycle management.
  • Experience with MLflow, Kubeflow, or similar MLOps platforms.
  • Exposure to Generative AI, vector search, embeddings, RAG pipelines, or LLM serving.
  • Experience with Spark, distributed processing, or lakehouse architectures.
  • Azure, AWS, Kubernetes, Databricks, or Terraform certifications.

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