Vestiaire Collective

Fashion

Senior/StaffMachineLearningEngineer

€75–110k ~AI est. Paris, France CONTRACT Remote Friendly
The Brief

“Senior/Staff Machine Learning Engineer at Vestiaire Collective. Skills: Machine Learning Engineering, MLOps, AI authentication, Computer vision, Search, Recommendation systems. Accelerate ML and RAG prototypes. Integrate with team to deploy models”

What You'll Achieve.

Deploy models for fraud detection; Deploy models for product authentication; Improve trust and safety ecosystem; Deliver high-throughput, low-latency business impact

Industry & Context.

Fashion
Problems you'll solve

Analytical builder; Troubleshooting

What They're Looking For.

Must Have

5-8+ years Machine Learning Engineering, Deploy low-latency, high-throughput ML inference services, Build automated, continuous model retraining pipelines, Orchestrate decoupled, multi-model AI architectures, Expertise in model registry and tracking tools, Hands-on experience with Feature Stores, Analytical builder mindset, Cross-functional communication skills, Translate ML prototypes into production code, Strict version control, Rigorous testing, CI/CD best practices

Nice to Have

Experience in E-commerce, Single-SKU Marketplaces experience, Search & Recommendation experience, Trust & Safety experience, Counterfeit Detection experience, Experience with Vector Databases, Visual RAG pipelines experience, Deploy Deep Learning VLM models, Optimize models for edge computing, Low-latency inference optimization, Advanced experience with containerization, Advanced experience with Infrastructure as Code, Advanced experience with data transformation workflows, Setup advanced monitoring for model performance, Setup advanced monitoring for concept drift, Setup advanced monitoring for system health

What You'll Do.

Accelerate ML and RAG prototypes

Integrate with team to deploy models

Improve trust and safety ecosystem

Design foundational ML lifecycle systems

Design Data & Feature Management systems

Design Model Tracking & Registry systems

Design Model Serving & Monitoring systems

Scale infrastructure automating retraining pipelines

Handle diverse deployment cadences

Design resilient multi-model architectures

Evaluate technical overhead of tools

Evaluate TCO of tools

Set technical standards for AI/ML organization

Mentor ML engineering team

Provide horizontal ML infrastructure support

How You'll Work.

Team & Collaboration

Partner with Operations squads; Partner with Data Scientists; Bridge Applied Science; Bridge Data Platform; Bridge Backend Engineering; Cross-functional communication

Communication Scope

Cross-functional communication

Process & Methodology

Roadmap planning

Free ATS check

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