ML Ops Engineer

Contract Type: Freelance SRL or PFA/Remote Contracting period: 6 months Role Overview We are looking for a skilled MLOps Engineer to join our data and machine learning initiatives. In this role, you will be responsible for deploying, operating, and scaling machine learning models in production environments, ensuring reliability, performance, and seamless integration with cloud-based data platforms. You will work closely with data scientists, data engineers, and platform teams to bridge the gap between model development and production operations. Key Responsibilities Deploy, monitor, and maintain machine learning models in production environments Design and implement MLOps pipelines for model training, validation, deployment, and retraining Collaborate with data science teams to operationalize TensorFlow-based models Build and maintain cloud-native ML infrastructure Implement monitoring for model performance, data drift, and system health Manage versioning for models, data, and pipelines Ensure scalability, reliability, and security of ML systems Automate workflows using CI/CD pipelines and Infrastructure-as-Code Optimize ML pipelines for performance and cost efficiency Required Skills & Experience Strong experience with Machine Learning and MLOps practices Hands-on experience with TensorFlow in production environments Strong proficiency in Python for ML and automation Solid experience working with data platforms and SQL for data analysis and transformations Experience with cloud platforms (AWS, GCP, or Azure) Understanding of ML lifecycle management , from experimentation to production Nice-to-Have Skills Experience with model monitoring and observability tools Familiarity with Docker and Kubernetes Experience with feature stores and data versioning tools Exposure to big data technologies or streaming systems Experience with DevOps / CI/CD practices for ML workloads

Place of work

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Bucharest
app.general.countries.Romania

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Job ID: 10359567 / Ref: 9d1e9d9612089c5490fa541fa33d4a6f

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