drjobs MLOps Engineer - 1121

MLOps Engineer - 1121

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1 Vacancy
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Job Location drjobs

Par - UK

Monthly Salary drjobs

Not Disclosed

drjobs

Salary Not Disclosed

Vacancy

1 Vacancy

Job Description

The Role:
We are actively seeking a highly skilled MLOps Engineer to become an integral part of our dynamic BF AI team. As we continue to innovate and drive forward in the realm of artificial intelligence we recognize the critical role that MLOps plays in ensuring the seamless deployment management and optimization of machine learning models. Join us in our pursuit of excellence as we harness the power of AI to solve complex challenges and make a meaningful impact. If you are passionate about MLOps and eager to contribute your expertise to a collaborative and forwardthinking environment we invite you to apply and be a part of our journey towards cuttingedge innovation.

    Responsibilities:

    • Design and implement infrastructure for deploying and managing ML models mainly focused on AWS services. This involves choosing orchestration tools for automating the ML workflow.
    • Containerize models to ensure consistency and portable deployment across environments.
    • Setup monitoring and tracking systems to track the health of ML models in production.
    • Automate the process of deploying ML models from dev to prod.
    • Models version control.
    • Datasets version control.
    • Collaborate with data scientists AI engineers and data engineers to understand the models and their requirements.
    • Document the ML workflows including deployment procedures monitoring practices and retraining strategies.
    • Implement security measures to protect sensitive information used in ML models and during deployment.
    • Ensure data privacy regulations are adhered to throughout the ML lifecycle.
    • Develop monitoring dashboards to visualize model performance and identify potential issues proactively.

    Requirements:

    • Bachelor or Masters degree in Computer Science.
    • Experience of at least 5 years in DevOps and MLOps.
    • Strong understanding of machine learning concepts algorithms and techniques.
    • Proficiency in machine learning libraries/frameworks such as TensorFlow PyTorch or scikitlearn.
    • Experience in model development training evaluation and optimization.
    • Ability to translate machine learning models into productionready code.
    • Deep knowledge of AWS services relevant to machine learning such as Amazon SageMaker AWS Lambda AWS Glue AWS Step Functions AWS Batch and Amazon EMR.
    • Familiarity with AWS storage and database services such as Amazon S3 Amazon RDS.
    • Expertise in containerization technologies such as Docker and container orchestration with Kubernetes.
    • Proficiency in managing infrastructure as code using tools like AWS CloudFormation or Terraform.
    • Experience in continuous integration and continuous deployment (CI/CD) pipelines for machine learning models.
    • Ability to monitor and troubleshoot production machine learning systems ensuring high availability scalability and performance.
    • Understanding of DevOps principles and practices including automation version control and collaboration.
    • Excellent communication collaboration and problemsolving skills.
    • AWS certifications relevant to machine learning and operations such as AWS Certified Machine Learning Specialty AWS Certified DevOps Engineer Professional or AWS Certified Solutions Architect Professional would be highly beneficial

    Wakapi Web

    Employment Type

    Full Time

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