Machine Learning Engineer

Ario Ventures Ltd

United States

Remote

USD 120,000 - 160,000

Full time

14 days+
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Job summary

Ario Ventures Ltd is seeking an ML Engineer focused on productionizing machine learning. You will move models from research notebooks into live services powering consumer-facing features.

You will own the end-to-end path from prototype to reliable deployment, building scalable infrastructure and collaborating with research and product teams to align with feature requirements. Strong software engineering habits, observability, and performance monitoring are essential as you ensure reliability and

Qualifications

  • Hands-on experience taking ML models from prototype through to production
  • Strong software engineering skills beyond notebook experimentation
  • Familiarity with tooling/infrastructure to train, serve, and scale ML systems
  • Solid understanding of common ML frameworks and deployment best practices
  • Comfort bridging research and product engineering

Responsibilities

  • Convert experimental notebook code into production-grade model services
  • Build and maintain the infrastructure required to serve models at scale
  • Collaborate with research and product engineering teams to align deployments with feature requirements
  • Monitor deployed models for reliability, latency, and quality
  • Apply software engineering discipline to ML code for testability, maintainability, and observability

Skills

Production ML
Software engineering
MLOps
Model serving
Observability

Tools

TensorFlow/PyTorch

Job description

Role overview

This position is centered on productionizing machine learning work, moving models out of research notebooks and into the live products that real users interact with every day. The engineer will own the path from prototype to reliable, scalable service inside consumer-facing applications.

Responsibilities
  • Convert experimental notebook code into production-grade model services
  • Build and maintain the infrastructure required to serve models at scale inside everyday products
  • Collaborate with research and product engineering teams to align deployments with feature requirements
  • Monitor deployed models for reliability, latency, and quality, and iterate on improvements
  • Apply software engineering discipline to ML code so it is testable, maintainable, and observable
Requirements
  • Hands-on experience taking machine learning models from prototype through to production deployment
  • Strong software engineering skills that extend well beyond notebook experimentation
  • Familiarity with the tooling and infrastructure used to train, serve, and scale ML systems
  • Solid understanding of common ML frameworks and deployment best practices
  • Comfort working at the intersection of research and product engineering
Nice to have
  • Experience with model monitoring, evaluation pipelines, or MLOps tooling
  • Background contributing to consumer-facing products where models ship at scale
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