Machine Learning Engineer - Hybrid

XPO Logistics

$100K — $120K *
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Bachelor's degree in Computer Science, Engineering, or a related field, or equivalent experience
  • 1 year of software or machine learning engineering experience
  • Experience with data preparation and quality-checking for ML pipelines
  • Proficient in Python and SQL
  • Familiar with cloud data or ML platforms like AWS, GCP, or BigQuery
  • Strong collaboration skills with data science and engineering teams

Responsibilities

  • Build and maintain data preparation and validation tooling
  • Design and implement ML infrastructure for model training and deployment
  • Develop CI/CD pipelines for machine learning models
  • Implement model monitoring and drift detection
  • Partner with applied scientists to streamline model deployment
  • Collaborate with data engineering teams for data pipeline reliability
  • Contribute to MLOps tooling and best practices

Benefits

  • Full health insurance benefits available on day one
  • Life and disability insurance provided
  • Earn up to 15 days of PTO in the first year
  • 9 paid company holidays
  • 401(k) option with company match
  • Education assistance available
  • Opportunity to participate in a company incentive plan
Full Job Description
What you'll need to succeed as a Machine Learning Engineer at XPO

Minimum qualifications:
  • Bachelor's degree in Computer Science, Engineering, or related field, or equivalent related work or military experience
  • 1 year of experience in software or machine learning engineering, including hands-on experience building data pipelines, ML infrastructure, or MLOps tooling
  • Experience developing data preparation, validation, or quality-checking tooling for machine learning pipelines
  • Proficiency in Python and SQL
  • Experience with cloud data or ML platforms (e.g., AWS, GCP, BigQuery)
  • Strong collaboration skills, with experience partnering with data science/applied science teams and data engineering teams

Preferred qualifications:
  • Master's degree in Computer Science or related field
  • 3+ years of experience building ML infrastructure for training, evaluation, and deployment at scale
  • Experience building and maintaining CI/CD pipelines for machine learning models
  • Experience with model serving and inference infrastructure (batch and real-time)
  • Experience implementing model monitoring, drift detection, and feedback-loop tooling
  • Experience with containerization and orchestration (Docker, Kubernetes)
  • Experience partnering with data engineering teams on data pipeline reliability and access


About the Machine Learning Engineer job

Pay, benefits and more:
  • Competitive compensation package
  • Full health insurance benefits available on day one
  • Life and disability insurance
  • Earn up to 15 days of PTO over your first year
  • 9 paid company holidays
  • 401(k) option with company match
  • Education assistance
  • Opportunity to participate in a company incentive plan


What you'll do on a typical day:
  • Build and maintain data preparation and validation tooling to ensure high-quality inputs for ML and optimization models
  • Design and implement ML infrastructure for model training, evaluation, and deployment
  • Build and maintain CI/CD pipelines for machine learning models, including automated testing and validation
  • Implement model monitoring, drift detection, and feedback loops to track model performance in production
  • Partner with applied and data scientists to productionize models and streamline the path from experimentation to deployment
  • Collaborate with data engineering teams to ensure reliable, accessible data pipelines
  • Contribute to shared MLOps tooling and best practices across the AI/ML organization


Annual Salary Range: $100,000 to $120,000 Actual compensation may vary due to factors such as experience and skill set. This is an incentive-based position, which may include bonuses, incentive or commission plans.

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