Posted:1 day ago| Platform: Naukri logo

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Job Type

Full Time

Job Description

We are seeking an experienced MLOps / GenAI Engineer with strong expertise in building and deploying production-grade ML pipelines, cloud-native solutions, and MLOps frameworks. The role requires a deep understanding of the ML lifecycle, CI/CD automation, containerization, and orchestration to deliver scalable, secure, and high-performing AI/ML solutions in enterprise environments.


Accountabilities
- Design, build, and deploy production-grade ML pipelines using modern frameworks and MLOps tools.
- Develop and manage CI/CD pipelines for ML model deployment and monitoring.
- Implement containerization (Docker) and orchestration (Kubernetes) for scalable model serving.
- Collaborate with data scientists, data engineers, and architects to productionize ML models .
- Ensure compliance with best practices for cloud-based ML deployments across AWS, Azure, or GCP.
- Integrate third-party services and APIs for enhanced solution capabilities.
- Contribute to architecture design while driving low-level implementation.
- Work closely with cross-functional teams across geographies to deliver end-to-end AI/ML solutions.


Essential Skills / Experience
- Hands-on experience in Generative AI and MLOps .
- Strong proficiency in Python and ML frameworks such as TensorFlow, Keras, or PyTorch .
- Experience with MLOps tools : MLFlow, Kubeflow, Weights & Biases, AWS SageMaker, Vertex AI, DVC, Airflow, Prefect.
- Proven experience in CI/CD pipelines , version control systems (Git) , and deployment automation (Jenkins, Cloud Build, etc.) .
- Strong knowledge of cloud platforms : AWS, GCP, Azure.
- Proficiency in containerization (Docker) , Kubernetes , and Kafka .
- Strong background in statistical modeling, machine learning, and unstructured data analytics .
- Deep understanding of ML lifecycle and hands-on experience in productionizing ML models .
- Experience in data engineering pipelines .


Desirable Skills / Experience
- Exposure to third-party integrations for AI/ML systems.
- Experience in architecture evolution for large-scale AI/ML solutions.
- Ability to work both independently and collaboratively in distributed teams.
- Strong problem-solving, stakeholder management, and technical communication skills.

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