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Dataops / Mlops Engineer

European Tech Recruit

Bressanone

In loco

EUR 40.000 - 70.000

Tempo pieno

2 giorni fa
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Descrizione del lavoro

A leading tech recruitment firm is partnering with a 3D scanning company in Bressanone to find a talented DataOps / MLOps Engineer. This position focuses on building infrastructure for data and ML workflows involving data storage, pipeline automation, and experiment tracking. Candidates should have experience with data handling, ML tools, and familiarity with large datasets and distributed training. Interested applicants are encouraged to send their CVs for consideration.

Competenze

  • Experience with data storage systems and large file handling.
  • Knowledge of dataset versioning tools like DVC or Delta Lake.
  • Familiarity with experiment tracking tools.

Mansioni

  • Design and manage data storage systems for large datasets.
  • Implement dataset versioning and lineage tracking.
  • Build ML pipelines for data preprocessing and training.

Conoscenze

Data storage systems
Dataset versioning tools
ML pipeline orchestration
Experiment tracking tools
Distributed training frameworks
Containerization
Python dependency management
Model registries and deployment workflows
Data quality validation frameworks
3D graphics processing

Strumenti

Docker
Airflow
Kubeflow
MLflow
Weights & Biases
Neptune
Descrizione del lavoro

European Tech Recruit are working closely with a market leading 3D scanning company, based in Bressanone, who are looking for a talented DataOps / MLOps Engineer to join their team.

In this role you will join a company that leverage state-of-the-art Computer Vision and Machine Learning algorithms to scan high quality, relightable 3D models of objects and products at scale.

You will help to build the infrastructure that powers their data and ML workflows. You'll focus on data storage and movement, dataset versioning, ML pipeline automation, experiment tracking, and ensuring reproducibility across the 3D reconstruction and training workloads.

Responsibilities as DataOps / MLOps Engineer :

  • Design and manage data storage systems for large datasets (multi-TB image data, 3D assets, training data).
  • Build efficient data access patterns and movement strategies for distributed training and experimentation.
  • Implement dataset versioning and lineage tracking for reproducibility
  • Set up and maintain experiment tracking and model registry infrastructure (MLflow, Weights & Biases).
  • Build ML pipelines for data preprocessing, training, validation, and model registration (Kubeflow, Airflow, Prefect).
  • Support distributed training workflows across multi-GPU clusters (PyTorch Distributed, Horovod, Ray).
  • Profile and optimize training pipelines : data loading bottlenecks, batch sizing, GPU memory utilization.
  • Ensure reproducibility of experiments : environment pinning, data versioning, artifact management.
  • Manage artifact storage and distribution (Docker registries, model registries, package repositories).
  • Build tooling to improve developer productivity for ML workflows.

Requirements :

  • Experience with data storage systems and large file handling (object storage, NFS, distributed filesystems).
  • Knowledge of dataset versioning tools (DVC, Delta Lake, or similar).
  • Experience with ML pipeline orchestration (Airflow, Prefect, Kubeflow).
  • Familiarity with experiment tracking tools (MLflow, Weights & Biases, Neptune).
  • Understanding of distributed training frameworks and patterns.
  • Experience with containerization (Docker) and CI / CD pipelines.
  • Knowledge of Python dependency and environment management.
  • Experience with model registries and deployment workflows.
  • Familiarity with data quality validation frameworks.
  • Knowledge of 3D graphics processing or computer vision workflows.

If this role is of any interest please apply directly on LinkedIn or send a copy of your CV to nh@eu-recruit.com.

By applying to this role you understand that we may collect your personal data and store and process it on our systems. For more information please see our Privacy Notice (https : / / eu-recruit.com / about-us / privacy-notice / ).

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