Data Science cum MLOps, Madrid (on-site) – International Client

The Whiteam

ESonsitePosted Jun 16, 2026
Posting intelligenceActively listedReposted 3×, possible evergreen/ghost posting

Skills

azure devopsscikitlearndatabrickstensorflowlangchainpytorchpythonazurecicdml

About the role

Data Science cum MLOps, Madrid (on-site) – International Client

Job role: Data Science cum MLOps.

Minimum experience: 6 to 8 years.

Studies required: Graduate.

Language: English (C1) (Mandatory).

Location: Madrid (on-site).

DESCRIPTION:

We are looking for a Data Science & MLOps Engineer to join our Advanced Analytics & AI team. This role focuses on designing, developing, and deploying scalable machine learning and Generative AI solutions within an Azure-based ecosystem.

You will collaborate with data scientists, data engineers, and business stakeholders to deliver end-to-end ML pipelines and production-ready AI models. The role requires a strong balance between data science expertise and MLOps practices, ensuring robust, scalable, and maintainable solutions.

The position involves working in Agile/DevOps environments and contributing to innovation initiatives that leverage emerging technologies such as GenAI and cloud platforms (Databricks, Azure).

Tasks:

Design, develop, and deploy machine learning and Generative AI models for advanced analytics use cases.

Build and maintain end-to-end ML pipelines, including data preprocessing, feature engineering, model training, evaluation, and deployment.

Collaborate closely with data scientists, data engineers, and analysts to deliver scalable AI solutions.

Implement and manage MLOps best practices, ensuring model reproducibility, monitoring, and lifecycle management.

Optimize models for performance and scalability in production environments.

Work with tools such as MLflow, Azure Machine Learning, and Azure DevOps for pipeline orchestration and CI/CD.

Drive innovation by expanding AI use cases using emerging technologies such as Generative AI.

Communicate complex analytical concepts to non-technical stakeholders and guide decision-making.

Participate in Agile/Scrum teams, contributing to continuous delivery and iterative product development.

Stay updated on industry trends in AI, MLOps, cloud computing, and data platforms.

Specific Expertise:

Experience: 6–8 years in Machine Learning Engineering or Applied ML, with strong exposure to MLOps.

Programming: Advanced proficiency in Python (OOP) and PySpark.

ML Frameworks: Hands-on experience with Scikit-learn, TensorFlow, or PyTorch.

Cloud & Platforms: Strong experience with Azure Cloud and Databricks.

MLOps & Pipelines: Expertise in building ML pipelines using MLflow, Azure ML, and CI/CD tools (Azure DevOps).

Data & Modeling: Strong knowledge of data preprocessing, feature engineering, model optimization, and evaluation techniques (cross-validation, A/B testing).

Version Control: Experience with Git and collaborative development practices.

Nice to Have:

Knowledge of Generative AI frameworks (e.g., LangChain).

Familiarity with vector databases.

Experience with model monitoring and logging in production.

Understanding of data governance and compliance.

Relevant Databricks or Azure certifications.

Language:

English (C1).

Location:

Madrid (on site).

Rate:

285-304 €/day.

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