Senior Machine Learning Operations Engineer

Veho Tech, Inc.

$120K — $160K *
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's Degree with 3+ years or Master's Degree with 2+ years in machine learning engineering.
  • Experience developing and optimizing MLOps pipelines for speed and reliability.
  • Proficient in Python and SQL.
  • Hands-on experience with open-source ML tooling like Ray, Flink, or Feast.
  • Familiarity with Data Warehouses like Redshift, Databricks, or Snowflake.
  • Experience with cloud-based tools, preferably AWS.
  • Background in building ML systems in startups or in the logistics/supply chain sector is advantageous.

Responsibilities

  • Build reliable, efficient, and scalable infrastructure for AI/ML capabilities.
  • Create robust data pipelines to support analyses and models.
  • Enable forecasting, network orchestration, and live pricing systems.
  • Ensure data quality and integrity through best practices.
  • Develop feature stores and model orchestration tooling.
  • Establish standards for model development and deployment across teams.
  • Monitor model performance and handle production incidents.

Benefits

  • Collaborative work environment with data scientists and software engineers.
  • Opportunity to impact logistics network and user experiences directly.
  • Access to cutting-edge tools and practices in machine learning.
  • Work on real-world problems with significant business implications.
  • A position that values both short-term impact and long-term vision.
Full Job Description
About The Role:

As a Senior Machine Learning Operations Engineer you'll be embedded in a team of talented data scientists and software engineers to create sophisticated models that answer hard questions centered around improving our logistics network and user experiences. This role bridges between ML platform work and building on top of our platforms to create new models. You'll create the infrastructure and tooling necessary to deploy, monitor, and scale our machine learning models in production. In close collaboration with data scientists you'll own our production models, ensuring optimal performance and responding to production incidents.

A great candidate:

Is an expert in their craft, creating high quality ML infrastructure and delivering impactful machine learning models to our stakeholders.

Works in close collaboration with the other Data Science team members and keeps the business value at the center of their work. Has a bias for action, balancing delivering impact in the short-term while building out the long term vision.

Applies their ML / MLOPS knowledge to suggest new patterns, tools, approaches to improve the team's models

What you'll do:
  • Build reliable, efficient, and scalable infrastructure for our AI/ML capabilities
  • Create robust data pipelines to feed analyses and models
  • Enable forecasting, network orchestration, and live pricing systems
  • Ensure data quality and data integrity through best practices in data integration
  • Build out robust feature stores, model orchestration tooling, experimentation tooling, model performance monitoring.
  • Create standards and templates for model development and deployment across all Data Science teams.


  • What You Bring:
  • Bachelor's Degree plus at least 3 years of experience in machine learning engineering, or Master's Degree plus at least 2 years in machine learning engineering
  • This experience should include:
  • Developing and optimizing MLOps pipelines for speed, reliability, and observability.
  • Utilizing statistical modeling or machine learning techniques to solve business problems.
  • Strong proficiency in Python and SQL.
  • Hands-on experience with open-source languages and tooling for large-scale ML (e.g., Ray, Flink, Feast).
  • Working with Data Warehouses (e.g., Redshift, Databricks, Snowflake).
  • Utilizing cloud-based (AWS Preferred) data engineering and data science tools.
  • Experience building ML systems in Startups is a plus
  • Experience with DS/ML in Logistics/Supply Chain is a plus.

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