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AI Engineer, Ops

AI Engineer, Ops

OneMagnify
  • Posted a day ago
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Job Description

AI Engineer, Ops

  • Job Description
  • Experience in Automotive and B2B areas. Designing the data pipelines and engineering infrastructure

enterprise machine learning systems at scale

  • Take offline models data scientists build and deploy them into machine learning

production system using Databricks

  • Identify and evaluate new technologies to improve performance, maintainability,

and reliability of production models including new features in Databricks

  • Apply software engineering rigor and best practices to machine learning, including

CI/CD, automation, etc.

  • Support model development, with an emphasis on auditability, versioning, and data

security

  • Facilitate the development and deployment of proof-of-concept machine learning

systems

  • Communicate across technical and business teams to build requirements and track

progress

  • Job Qualifications for AI Engineer, Ops : -
  • Proven experience managing machine learning models from development to

production, including model deployment, monitoring, retraining, and scaling

  • Strong understanding of the machine learning lifecycle, including model versioning,

and continuous integration/continuous delivery (CI/CD) for ML models

  • Expertise in cloud platforms such as AWS, GCP, or Azure for managing scalable ML

infrastructure

  • Experience with containerization (Docker, Kubernetes) and orchestration of ML

pipelines

  • Knowledge of infrastructure as code (Terraform, CloudFormation) and CI/CD tools

(Jenkins, GitLab, etc.).

  • Solid understanding of machine learning algorithms, data preprocessing, and

feature engineering.

  • Experience with ML frameworks and libraries
  • Strong programming skills in Python and familiarity with data engineering pipelines.
  • Education and Experience
  • Bachelor's degree from a four-year college or university in Information

Management, Computer Science or Business Administration or a relevant area of

study

  • (C) (D) (E) Data analytics or business intelligence experience (7 years).

Model development, monitoring and production (5+ years).

Management of analytics initiatives (3+ years).

Experience with various data analytics tools.





























Key Skills

Model deployment

Data preprocessing

Data engineering pipelines

Model versioning

Feature engineering

ML frameworks and libraries

Machine learning lifecycle

About Company

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