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Machine learning engineer

Bruges
Vivid Resourcing
Publiée le Publiée il y a 2 h
Description de l'offre

The Role

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As a Machine Learning Engineer, you will be responsible for the ML lifecycle—from data ingestion and model development to deployment and monitoring in production. You will be working on real-world, large-scale challenges, applying strong engineering practices to build reliable machine learning systems.

Responsibilities

Design, develop, and deploy machine learning models for production use cases (e.g., recommendation systems, NLP, computer vision, predictive analytics)

Build and maintain scalable ML pipelines for training, evaluation, and inference

Work with both structured and unstructured data across diverse domains

Implement robust data preprocessing, feature engineering, and transformation workflows

Ensure data quality, integrity, and compliance with data governance standards (e.g., GDPR)

Optimize models for performance, scalability, and cost-efficiency in production environments

Collaborate with data engineers, software engineers, and product stakeholders

Deploy and manage models using cloud platforms (AWS, Azure, or GCP) and containerization tools

Implement monitoring, validation, and testing frameworks to ensure model reliability

Continuously improve model performance through experimentation, iteration, and validationContribute to MLOps practices, including CI/CD pipelines, model versioning, and reproducibility

Your Profile

3–6+ years of experience in Machine Learning Engineering, AI Engineering, or related roles

Strong programming skills in Python

Hands‑on experience with ML/DL frameworks (e.g., TensorFlow, PyTorch)

Solid understanding of machine learning algorithms, model evaluation, and optimization techniques

Proven experience building and deploying ML pipelines in production environments

Familiarity with data engineering concepts xphnsxz (ETL/ELT, data pipelines)

Experience with cloud platforms (AWS, Azure, or GCP)

Experience with containerization tools (Docker, Kubernetes) is a plus

Understanding of MLOps practices and tools (e.g., MLflow, Airflow)

Experience working with large-scale or complex datasets

Awareness of data privacy and governance best practices

The Offer

Competitive salary and comprehensive benefits package

Hybrid working environment

Opportunity to work on high-impact, scalable ML systems in a modern tech environment

Route for growth within the company

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