Machine Learning Engineer - Python / Production ML
Elinext is an international software development company with 25+ years of experience, helping clients worldwide build and scale reliable digital products. We work across Fintech, Healthcare, Manufacturing, AI/ML, Cloud, Enterprise Software, and other domains.
We are currently looking for an experienced Machine Learning Engineer to join an international project in the financial domain.
📍 Location: Poland, Georgia, Uzbekistan, Kazakhstan, Armenia and other eligible locations
About the role:
The main focus is on taking machine learning models beyond the research stage and turning them into reliable production-grade systems.
You will work with real financial datasets, deploy and maintain ML services, monitor model performance, improve data pipelines, and collaborate closely with software engineers and data scientists.
Responsibilities:
Develop, deploy, and maintain machine learning models and services;
Keep existing ML solutions performant, stable, and robust;
Turn research prototypes into production-grade ML systems;
Harden code, add tests, logging, monitoring, and observability;
Own model serving, deployment, scaling, and lifecycle management;
Monitor model performance and detect drift;
Build and maintain retraining processes;
Engineer and evaluate features on real financial datasets;
Calibrate and validate models to ensure reliable behavior;
Build and improve data pipelines;
Collaborate with software engineers and data scientists;
Document approaches, experiments, and architecture decisions.
MUST HAVE:
Strong software engineering skills in Python;
Clean, typed, maintainable, and well-tested code;
Experience with version control and CI/CD;
Strong knowledge of NumPy, Pandas, scikit-learn, PyTorch;
Solid understanding of machine learning, statistics, and model evaluation;
Proven experience taking ML models into production;
Experience with model serving, monitoring, drift detection, and retraining;
Experience building production APIs and services with FastAPI, Flask, or similar;
Experience with Docker / containerization;
Experience deploying services on Kubernetes or similar environments;
Strong feature engineering experience with structured / tabular data;
Experience working with large datasets and reliable data pipelines;
Strong communication skills with technical and business stakeholders.
Nice to Have:
Financial / fintech project experience;
Experience with production MLOps practices;
Experience with highly scalable ML platforms;
Experience with model explainability and reproducibility;
Experience with distributed data processing or cloud environments.
What We Offer:
Small-company feel within a fast-growing international environment;
Friendly, collaborative, and mission-driven team;
Vacation (depends on the location) + 5 additional paid sick days;
Medical insurance;
Corporate English courses;
Corporate events and team-building activities;
Support with professional certifications;
Reimbursement for professional courses and training;
Long-term international projects;
Opportunities for professional and technical growth.
Published on: 9/4/2026
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