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We are seeking a skilled ML Ops Engineer to join our team and streamline the deployment, monitoring, and management of machine learning models at scale. You will collaborate closely with data scientists, engineers, and DevOps to build robust, scalable ML infrastructure and CI/CD pipelines for AI/ML workflows.
ML Ops engineer/ML engineer
Project Description
The engineer is supposed to participate in various AI projects such as Demand Sensing and Forecasting, Price and Promotion Optimization and others.
Details on Tech Stack
Nice to Have Requirements
Perks & Benefits:
Job ID: 112478583
Skills:
Machine Learning, Cortex, Apache Spark, Data Warehousing, Sql, MLops, Docker, Terraform, Databricks, Microsoft Azure, Kubernetes, Python, Workflow orchestration tools, Infrastructure as Code, Vector databases, Streaming technologies, MLflow, Data Processing, Azure OpenAI, LLM applications, Dataiku
Skills:
Tensorflow, Azure ML, MLops, Pytorch, Docker, Kubernetes, Python, Computer Vision, Airflow, TFX, MLflow, Prefect, GitLab CI, GitHub Actions, AWS SageMaker, Kubeflow
Skills:
MLops, Kubernetes, Docker, Jenkins, CI/CD
Skills:
Kubernetes, Java, Tensorflow, Devops, Grafana, MLops, Pytorch, Cloudformation, Terraform, Gcp, Uipath, Azure DevOps, Elk Stack, Workfusion, Ansible, SAP, Selenium, Automation Anywhere, AWS, Prometheus, Python, Servicenow, Azure, Docker, Jenkins, GitLab CI, TFX, Hugging Face, Salesforce, RPA technologies, CI CD pipelines, MLflow, Kubeflow
Skills:
Pytorch, Python, Kubernetes, Docker, Dask, DeepSpeed, Airflow, MLflow, Ray.io, TensorRT
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