MLOps Engineer

Inizio Partners Corp

  • Dallas, Texas
  • 3 days ago
  • Remote

    Highlights

    As an MLOps Engineer, you will play a crucial role in developing and implementing machine learning operations processes and infrastructure to support our data science initiatives. Develop and maintain end-to-end machine learning operations (MLOps) pipelines for deploying, monitoring, and scaling machine learning models.

    Numbers & Facts

    LocationDallas, Texas (
    Remote
    )
    Websitehttps://www.iniziopartners.com

    Description

    Job Title: MLOps Engineer

    Job Description:

    We are seeking a highly skilled and experienced MLOps Engineer to join our client. As an MLOps Engineer, you will play a crucial role in developing and implementing machine learning operations processes and infrastructure to support our data science initiatives.

    Responsibilities:

    • Develop and maintain end-to-end machine learning operations (MLOps) pipelines for deploying, monitoring, and scaling machine learning models.
    • Collaborate with data scientists, software engineers, and DevOps teams to ensure seamless integration of ML models into production systems.
    • Design and implement automated testing frameworks for ML models to ensure accuracy, reliability, and performance.
    • Optimize model deployment processes by leveraging containerization technologies such as Docker or Kubernetes.
    • Implement continuous integration/continuous deployment (CI/CD) practices for ML model development lifecycle management.
    • Monitor deployed ML models in production environments to identify performance issues or anomalies.
    • Work closely with cross-functional teams to troubleshoot issues related to model performance or data quality in production systems.
    • Stay up-to-date with the latest advancements in MLOps toolkits, frameworks, best practices, and industry trends.

    Requirements:

    • Bachelors degree in computer science or a related field; advanced degree preferred.
    • Minimum 5 years of experience working as an MLOps Engineer or similar role within a data-driven organization.
    • Experience with Kubernetes and Kubeflow is mandatory.
    • Strong understanding of machine learning concepts and algorithms.
    • Proficiency in Python developing ML pipelines/scripts.
    • Experience with popular MLOps toolkits such as Kubeflow Pipelines, TensorFlow Extended (TFX), MLflow, etc., is essential.
    • Solid knowledge of containerization technologies like Docker and Kubernetes for deploying ML models at scale.
    • Familiarity with cloud platforms like AWS/Azure/GCP for building scalable infrastructure solutions is highly desirable
    • Experience with version control systems like Git/GitHub for managing code repositories
    • Excellent problem-solving skills with the ability to analyze complex technical issues related to ML model deployments.

    Location:

    Remote/Dallas.


    Package Details

    • Base - $125,000
    • Bonus - 15% - 18%
    • Full Benefits

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