Senior AI/ML Engineer; MLOps & ML Platform
Listed on 2026-09-01
-
Software Development
Machine Learning/ ML Engineer, AI Engineer (Applied/Software), DevOps, Azure
Amsterdam, Netherlands | Posted on 02/19/2026
Location: Amsterdam, Netherlands
Contract Duration:6 months (renewable)
Experience: 6–8 years
About the RoleWe are looking for a Senior AI / ML Engineer to join our growing ML Engineering team
. You will work closely with data scientists, engineers, and product managers to design, build, deploy, and operate robust machine learning systems that power key services across our Digital and Retail platforms
.
This role has a strong focus on MLOps and ML Platform development
, helping scale and maintain production-ready ML workflows using modern cloud infrastructure and tooling.
Design, develop, and maintain end-to-end ML pipelines for training, validation, deployment, and monitoring.
Support scalable ML solutions across use cases such as recommendations, forecasting, and automation
.
Product ionise data science models into reliable, scalable services
.
Build and operate ML services using Airflow, Azure ML, and FastAPI
.
Automate model deployment and lifecycle management using CI/CD pipelines (Git Hub Actions, Azure Dev Ops).
Improve reliability, observability, and performance of the ML platform.
Implement monitoring, alerting, and model drift detection using tools like Azure Monitor, New Relic, Grafana
, and custom logging.
Manage and evolve infrastructure using Terraform, Docker, and AWS Fargate
.
Collaborate cross-functionally with engineering, data, and product teams.
Requirements- Proven experience in ML Engineering, MLOps, Dev Ops, or Data Engineering with exposure to the full ML lifecycle.
Hands-on experience building or maintaining ML pipelines and workflows
.
Strong Python skills with experience using MLflow, Scikit-learn, Py Torch , or similar frameworks.
Experience with
cloud platforms
, particularly Azure and AWS
.
Solid understanding of containerization (Docker) and orchestration (e.g.
Kubernetes
).
Experience with
CI/CD tools (Git Hub Actions, Azure Dev Ops).
Familiarity with Infrastructure as Code (Terraform).
Strong communication skills and a collaborative mindset.
Technical StackAPIs & Services: FastAPI
Experience with
data platforms such as Snowflake or Azure Data Lake.
Deploying ML models as APIs or services (FastAPI, Azure Functions).
Strong understanding of model performance monitoring, observability, and drift detection
.
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