X4 Technology
Machine Learning Engineer
Stellenbeschreibung:
    MLOps Engineer Job Description
    Job Title: MLOps Engineer (Databricks)

    Rate: Up to 35 Euros/hour

    Location: Remote

    Contract Length: 12-24 months

    A European consultancy are seeking a Databricks focused MLOps Engineer to join the team on a long term 12-24 month contract.

    This role will be supporting the full end-to-end model lifecycle in production environments built on Azure and Databricks not only internally, but also in close collaboration with business units and customer teams across a international business units.

    Databricks expertise is a must.

    Core Responsibilities
    • Build and manage ML/MLOps pipelines using Databricks
    • Design, optimise and operate robust end-to-end machine learning pipelines within the Databricks environment on Azure.
    • Support internal project teams
    • Act as a technical point of contact for internal stakeholders, assisting with onboarding to Databricks, model deployment and pipeline design.
    • Leverage key Databricks features
    • Utilise capabilities such as MLflow, Workflows, Unity Catalog, Model Serving and Monitoring to enable scalable and manageable solutions.
    • Implement governance and observability
    • Integrate compliance, monitoring and audit features across the full machine learning lifecycle.
    • Operationalise ML/AI models
    • Lead efforts to move models into production, ensuring they are stable, secure and scalable.
    • Hands-on with model operations
    • Work directly on model hosting, monitoring, drift detection and retraining processes.
    • Collaborate with internal teams
    • Participate in customer-facing meetings, workshops and solution design sessions across departments.
    • Contribute to platform and knowledge improvement
    • Support the continuous development of Databricks platform services and promote knowledge sharing across teams.

    Essential Skills and Experience:
    • End-to-end ML/AI lifecycle expertise
    • Strong hands-on experience across the full machine learning lifecycle, from data preparation and model development to deployment, monitoring, and retraining.
    • Proficiency with Azure Databricks
    • Practical experience using key components such as:
      • MLflow for experiment tracking and model management
      • Delta Lake for data versioning and reliability
      • Unity Catalog for access control and data governance
      • Workflows for pipeline orchestration
      • Model Serving and automation of the model lifecycle
    • Machine learning frameworks
    • Working knowledge of at least one widely used ML library, such as PyTorch, TensorFlow, or Scikit-learn.
    • DevOps and automation tooling
    • Experience with CI/CD pipelines, infrastructure-as-code (e.g., Terraform), and container technologies like Docker.
    • Cloud platform familiarity
    • Experience working on Azure is preferred; however, a background in AWS or other providers with a willingness to transition is also suitable.
    • Production-grade pipeline design
    • Proven ability to design, deploy, and maintain machine learning pipelines in production environments.
    • Stakeholder-focused communication
    • Ability to explain complex technical concepts in a clear and business-relevant way, especially when working with internal customers and cross-functional teams.
    • Governance and compliance awareness
    • Exposure to model monitoring, data governance, and regulatory considerations such as explainability and security controls.
    • Agile working practices
    • Comfortable contributing within agile teams and using tools like Jira or equivalent project management platforms.

    Desirable Experience
    • Experience working with large language models (LLMs), generative AI or multimodal orchestration tools
    • Familiarity with explainability libraries such as SHAP or LIME
    • Previous use of Azure services such as Azure Data Factory, Synapse Analytics or Azure DevOps
    • Background in regulated industries such as insurance, financial services or healthcare

    If this sounds like an exciting opportunity please apply with your CV.
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Stelleninformationen
  • Typ:

    Vollzeit
  • Arbeitsmodell:

    Remote
  • Kategorie:

    Development & IT
  • Erfahrung:

    Erfahren
  • Arbeitsverhältnis:

    Angestellt
  • Veröffentlichungsdatum:

    28 Aug 2025
  • Standort:

    Munich
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