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Senior ML Ops Engineer

Nift·Israel·en
RemotoTiempo completoAI & Machine LearningAdvertising

Join a growing performance marketing company as a hands-on ML Ops Engineer. Partner with data scientists and engineers to build reliable, reproducible, observable, and cost-efficient machine learning platforms and production systems. The role offers flexible remote work and direct impact on company,

Responsabilidades

  • Productionize batch and real-time model training and inference workflows
  • Establish CI/CD, data versioning, model governance, and deployment practices
  • Develop feature generation and feature store patterns, model registries, and metadata management
  • Build monitoring, alerting, and dashboards for data quality, drift, model performance, latency, and pipeline health
  • Refactor research code into reusable components with consistent repository structures, testing, logging, and reproducibility
  • Collaborate with data scientists, analysts, and engineers to turn prototypes into production systems
  • Provide mentorship and technical guidance across the engineering team
  • Define the technical vision and architectural standards for ML platform capabilities

Requisitos

  • At least 5 years of ML Ops experience, including ownership of ML infrastructure for large-scale systems
  • Strong Python software engineering experience, including automated pipelines that bring machine learning models into production
  • Experience with coding, debugging, performance analysis, testing, CI/CD, and reproducible builds
  • Production experience with AWS, Databricks, Docker, and Kubernetes, including EKS, ECS, or equivalent
  • Experience using Terraform or CloudFormation to manage reviewable infrastructure environments
  • Experience with MLflow, SageMaker, or comparable machine learning lifecycle tooling
  • Experience implementing monitoring for data quality, model drift, model performance, latency, and pipeline health
  • Strong communication and collaboration skills when working with data scientists, analysts, and engineers

Se valora

  • Experience with PySpark, AWS Glue, Dask, or Kafka
  • Experience integrating third-party data
  • Familiarity with real-time endpoints, batch scoring, and feature stores
  • Exposure to model governance, compliance, and secure ML operations

Beneficios

  • Competitive compensation
  • Flexible remote work
  • Unlimited responsible PTO
  • Opportunity to influence a growing, cash-flow-positive company

Compatibilidad

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