ML Ops Engineer

Keylent, Inc.

$145K *
Information Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 7+ years of experience in DevOps and MLOps within Production/Enterprise environments.
  • Strong written and verbal communication skills for presentations.
  • Technical background in platform and infrastructure operations.
  • Unix or Linux system administration expertise.
  • Experience with container deployment using Docker and Kubernetes.
  • Proficient in the machine learning modeling lifecycle and model delivery.
  • Experience managing large distributed systems such as Spark, DASK, or H2O.

Responsibilities

  • Build and manage a scalable machine learning platform on cloud (preferred Azure) and on-premises.
  • Collaborate with data scientists and engineers to implement scalable Client/DL solutions.
  • Create and maintain Client/DL pipelines for end-to-end workflows.
  • Implement Client/DL solutions focusing on performance and model governance.
  • Stay current with the latest technologies and frameworks related to Client/DL.

Benefits

  • Exposure to cutting-edge Client/DL technologies.
  • Opportunity to work in a collaborative environment with diverse teams.
  • Engagement in innovative projects within the data and analytics space.
Full Job Description
Job Title - Client Ops Engineer - APEXON / Client - $70

Location: Berkeley Heights, NJ

Job Description Summary:
  • MLOps to build & support scalable, highly available and robust Machine Learning (Client) /Deep Learning (DL) platform using Client/DL frameworks, High-Performance Computing (HPC) machines, Data Science tools, products & services in cloud and on-premises for client's data & analytics organization.
  • Role will expose you to cutting edge technologies related to Client/DL and the ideal candidate will be driven, focused and enthusiastic about learning new technologies and implementing them.

Responsibilities:
  • Build, install, configure, manage, and scale state-of-the-art machine learning platform in cloud (Azure preferred) & on-premises powering client's Data & Analytics products and solutions.
  • Work with data scientists, architects, DevOps engineers, and vendors to implement scalable Client/DL solutions in cloud and on-premises to solve complex problems.
  • Creating & maintaining Client/DL pipelines and overall Client/DL workflow orchestration including but not limited to data collection, prep, transform, analyze, experiment, train, validate, serve, monitor, etc.
  • Implement Client/DL solutions addressing performance, scalability, and the governance/ traceability of machine learning models.
  • Iterate quickly through latest technologies, products, frameworks, and R&D on latest information related to Client/DL frameworks, tools & services.

Qualifications:
  • Overall 7+ years' experience delivering DevOps and MLOps in a Production/Enterprise setting.
  • Excellent written and oral communication and presentation skills.
  • Experienced in a technical role involving platform and infrastructure operation.
  • System administration experience of Unix or Linux systems.
  • Container-based deployment experience using Docker and Kubernetes.
  • Proficient with the machine learning modelling lifecycle and comfortable addressing both functional and technical aspects of model delivery
  • Experience with managing and deployment of large distributed systems like Spark, DASK & H20 and heterogenous platform components.
  • Experienced with programming languages like Python or R and comfortable in understanding statistical foundations of most used Client algorithms.
  • Experienced with Machine Learning frameworks: Sci-kit, Keras, Theano, TensorFlow, SparkMlib, etc.
  • Preferred hand-on experience IBM Watson Machine Learning systems or related preferred
  • Preferred hands-on experience with HPC - Nvidia, CUDA
  • Preferred experience with configuration Management tools like Ansible, puppet
  • Preferred experience in monitoring and performance analysis of Machine Learning platforms using tools like Grafana and Zabbix.

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