Senior Machine Learning Ops Engineer

Nis, Nišavski okrug, Serbia

Better Collective

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You are:

An experienced MLOps Engineer who thrives on building the backbone of production-grade ML systems. You enjoy bridging the gap between model development and production, creating scalable infrastructure, and empowering ML teams to ship models with confidence. You’re comfortable working across cloud services, containerized environments, and CI/CD pipelines—and you understand the importance of reproducibility, monitoring, and automation.

You will:

  • Design and implement infrastructure for ML model training, testing, deployment, and monitoring.

  • Collaborate with ML engineers and data scientists to streamline model operationalization and CI/CD integration.

  • Manage containerized environments (Docker, Kubernetes/ECS) and model serving infrastructure.

  • Monitor production ML systems for performance degradation, data drift, and retraining needs.

  • Use tools like MLflow to track experiments, manage model versions, and support model governance.

  • Automate workflows using tools like Airflow, Step Functions, or similar orchestration platforms.

  • Contribute to IaC (e.g., Terraform or CloudFormation) to ensure reproducible infrastructure deployments.

Requirements

  • A degree in computer science, engineering, or a related field.

  • 3–6+ years of experience in DevOps, Cloud Engineering, or MLOps roles supporting machine learning teams.

  • Proficiency in Python and experience with ML frameworks (e.g. Scikit-learn, PyTorch, TensorFlow).

  • Hands-on experience with AWS services like S3, SageMaker, Lambda, Redshift, and ECR.

  • Expertise with containerization and orchestration tools (Docker, ECS, Kubernetes).

  • Familiarity with ML lifecycle tooling such as MLflow, DVC, or SageMaker Pipelines.

  • Solid understanding of CI/CD pipelines, Git workflows, and infrastructure-as-code.

  • Strong collaboration skills and a mindset of continuous improvement.

  • Fluency in English.

Nice to have

  • Experience with real-time model serving and streaming pipelines.

  • Knowledge of observability frameworks (Prometheus, Grafana, etc.).

  • Familiarity with security and compliance practices for ML systems.

  • Interest in emerging areas such as ML governance or responsible AI.

Benefits

  • Private health insurance

  • Sick leave 100% paid

  • Canteen with free meals and drinks

  • Flexible working hours

  • Additional vacation days after two years in the company

We also provide up-to date equipment, entertainment facilities in a modern office right in the city center and more.

Note
: Flexible working hours and occasional work from home options in Better Collective help us achieve proper work-life balance. We strongly believe in the magic of teamwork, though, so we come to the office at least three days a week to keep the team spirits high.

Application Deadline

We look forward to hearing from you and accept applications until 5th of July
Please submit your CV and cover letter in PDF; only applications submitted in English will be considered.

Expected start date: as soon as possible.

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* Salary range is an estimate based on our AI, ML, Data Science Salary Index 💰

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Tags: Airflow AWS CI/CD CloudFormation Computer Science DevOps Docker ECS Engineering Git Grafana Kubernetes Lambda Machine Learning MLFlow ML models MLOps Model training Pipelines Python PyTorch Redshift Responsible AI SageMaker Scikit-learn Security Step Functions Streaming TensorFlow Terraform Testing

Perks/benefits: Career development Flex hours Flex vacation Gear Health care

Region: Europe
Country: Serbia

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