Job Description :- Experience in CI/CD pipelines, scripting languages, and a deep understanding of version control systems (e.g. Git), containerization (e.g. Docker), and continuous integration/deployment tools (e.g. Jenkins) third party integration is a plus, cloud computing platforms (e.g. AWS, GCP, Azure), Kubernetes and Kafka.- Experience in 4+ years of experience building production-grade ML pipelines.- Proficient in Python and frameworks like Tensorflow, Keras, or PyTorch. - Experience with cloud build, deployment, and orchestration tools- Experience with MLOps tools such as MLFlow, Kubeflow, Weights & Biases, AWS Sagemaker, Vertex AI, DVC, Airflow, Prefect, etc.,- Experience in statistical modeling, machine learning, data mining, and unstructured data analytics.- Understanding of ML Lifecycle, MLOps & Hands on experience to Productionize the ML Model- Detail-oriented, with the ability to work both independently and collaboratively.- Ability to work successfully with multi-functional teams, principals, and architects, across organizational boundaries and geographies.- Equal comfort driving low-level technical implementation and high-level architecture evolution- Experience working with data engineering pipelines. (ref:hirist.tech)
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