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Principal Machine Learning Engineer, ML Platform

Shippo Dev

Remote

USD 212,000 - 287,000

Full time

Today
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Job summary

A global shipping technology company is seeking a Principal Machine Learning Engineer for their ML Platform. This role requires over 15 years of software engineering experience and 4+ years in end-to-end ML systems in production. Responsibilities include setting technical strategy, mentoring engineers, and enhancing ML platform capabilities. Ideal candidates will have expertise in Kubernetes and ML lifecycle tooling. This is a remote-first position offering a competitive salary package and comprehensive benefits.

Benefits

Healthcare coverage
Flexible vacation policy
Professional growth resources
WFH stipend

Qualifications

  • 15+ years of software engineering experience including ownership of production systems.
  • 4+ years owning ML systems end-to-end in production.
  • Strong experience building services on Kubernetes.

Responsibilities

  • Set technical strategy for the ML platform capabilities.
  • Own architecture decisions for ML lifecycle.
  • Mentor engineers and establish engineering standards.

Skills

Software engineering experience
ML systems
Kubernetes
ML lifecycle tooling
Technical leadership

Education

Bachelor's degree in a relevant field

Tools

Databricks
MLflow
Job description
Principal Machine Learning Engineer, ML Platform

About Shippo

At Shippo, our vision is bold and clear: we are the shipping layer of the internet. Our mission is to make every merchant successful through excellent shipping,delivering world-class logistics technology and infrastructure. We’re building the backbone of global e-commerce — connecting merchants to carriers worldwide through a single API and intuitive dashboard.

As a remote-first and globally distributed team , we believe flexibility fuels trust, autonomy, and performance. Our diverse perspectives — across continents, cultures, and time zones — drive our innovation and enable us to build solutions used by businesses everywhere. We invest in modern, scalable technology so our teams can build, ship, and iterate with confidence.

Your impact starts here: every person at Shippo plays a direct role in shaping the infrastructure that powers global commerce and makes shipping simpler for businesses around the world.

How we will deliver success together:

Shippo is expanding applied ML across core business problems — delivery-date prediction, fraud detection, anomaly detection, and other optimizations in shipping logistics. To deliver these capabilities reliably and at scale, we need a standardized, production-grade ML platform that makes it easy to develop, test, deploy, and operate models.

This Principal ML Platform Engineer will build the “paved roads” that reduce time-to-production, improve model and service reliability, lower operational risk, and advance ML workflows. Our stack is Databricks-centric today, but we want a vendor-agnostic leader who can advise when Databricks is the right fit and when alternative approaches are better for performance, cost, or operational simplicity. This role will directly increase ML product velocity and improve the consistency and quality of ML systems that power customer-facing experiences and internal decision-making.

  • Set technical strategy and drive a multi-quarter roadmap for ML platform capabilities aligned to Shippo’s business priorities.
  • Own cross-team architecture decisions, RFCs, and design reviews for ML lifecycle and inference.
  • Raise the engineering bar through mentorship, production readiness standards, and reusable platform primitives.
  • Be accountable for platform adoption, reliability, and cost-performance outcomes.
  • Build and operate core ML platform components:
  • ML lifecycle foundation (experiment tracking, reproducibility, artifact management, model registry, versioning, and controlled promotion workflows using MLflow or equivalent).
  • Training and experimentation enablement (standardized environments, reusable pipelines/templates, evaluation harnesses, and repeatable workflows that let data scientists move from exploration to production with confidence).
  • Kubernetes-native model serving for real-time inference (safe rollout and rollback, autoscaling, reliability practices, and cost controls).
  • Batch inference and scoring pipelines (repeatable backfills, retraining triggers, consistent packaging between training and inference).
  • Observability for ML systems (service health metrics, alerting, and model-quality signals such as drift and data quality).
  • Developer experience (templates, reference implementations, documentation, and self-service workflows).
  • Evaluate and recommend inference frameworks and deployment patterns, and document tradeoffs for Shippo’s workloads.
  • Identify and resolve performance bottlenecks across the inference stack (model runtime, compute utilization, networking, serialization, and autoscaling behavior).
  • Establish ML engineering standards across training, evaluation, testing, model packaging, CI/CD, production readiness, and incident response.
  • Partner with Data Science teams to bridge research and production environments by creating repeatable frameworks, shared standards for code quality and reproducibility, and self-serve paths to deploy models safely.
  • Collaborate with Data and Engineering teams to ensure the platform supports real workflows, drives adoption, and meets reliability expectations.
  • Mentor engineers through design reviews, architecture guidance, and shared best practices across platform and ML development.

Your shipping requirements

  • 15+ years of software engineering experience, including ownership of production systems (platform, infrastructure, or distributed systems).
  • 4+ years owning ML systems end-to-end in production, including on-call and incident response, and making architecture decisions based on operational constraints (latency, throughput, availability, and cost).
  • Strong experience building and running services on Kubernetes, including deployments, autoscaling, and observability.
  • Hands-on experience with ML lifecycle tooling such as MLflow or equivalent (tracking, registry, packaging, and promotion workflows).
  • Demonstrated ability to evaluate inference tradeoffs across batch and real-time serving, CPU versus GPU, latency and throughput, cost, and operational complexity.
  • Demonstrated Principal-level technical leadership, including setting technical direction, driving cross-team alignment via RFCs/design reviews, and delivering multi-quarter roadmaps.
  • Proven ownership of reliability and operational outcomes for production systems (SLOs, incident response, and measurable improvements in stability and performance).
  • Demonstrated ability to ship incrementally, prioritize production reliability over perfect solutions, and drive adoption through pragmatic platform design.
  • Experience working with or evaluating managed ML platforms (Databricks, SageMaker, Vertex AI, or similar), with clear judgement on strengths, limitations, and build-vs-buy decisions.

Bonus

  • Databricks experience (useful, not required), including Databricks workflows and ML tooling integration.
  • Experience with inference and serving frameworks.
  • Experience with feature store patterns, online and offline consistency, and model evaluation at scale.
  • Experience supporting optimization systems and decision engines in production.
  • LLM or agent workflow experience, especially evaluation harnesses, deployment patterns, guardrails, and monitoring.

What is in the Shippo Package?

  • Healthcare coverage for medical, dental, and vision (90% covered by the company, incl. dependents). Pets coverage is also available!
  • Take-as-much-as-you-need vacation policy & flexible workinghours
  • One week-long company wide winter slow down
  • WFH stipend to set up your home office
  • Charity donation match up to $100
  • Dedicated programs, coaching, tools, and resources for your professional and career growth as well as an individual learning stipend for your personal and focused growth
  • Fun team in person time through our Shippos Everywhere program which includes regular team and company off-sites throughout the year as well as local Shippos gatherings

Compensation

Our Compensation Ship policy:

We believe compensation is a custom experience and are commited to fair and equitable compensation practices. The standard base pay range for this role is min is $212k to a max $287k annual salary (we tend to anchor our offers at the mid point $250k). Since we are focused on hiring Shippos Everywhere, we have 2 US pay ranges, a standard compensation range for the majority of the US and a standard +1 compensation range for those who live in areas where the cost of labor is higher, such as NYC and California.

The actual base pay is dependent upon many factors, such as: financial budgets, work experience, training, transferable skills, business needs, and market value. The base pay salary ranges are subject to change and may be modified in the future. Total compensation for this role will include, equity, medical, dental, vision and other benefits noted in our Shippos “package” section.

Sail through the process:

Here at Shippo, we celebrate inclusivity and are committed to creating equal access to opportunities for people from all backgrounds, perspectives and geographies. These values define who we are and everything we do. All qualified individuals are encouraged to apply. If you need assistance, or a reasonable accommodation during the application and recruiting process, please contact us at accommodations@goshippo.com

Shippo s in the wild:

Our people, much like the packages we help ship, are all over the world. This means, through our remote-first program, “Shippos Everywhere”, our roles can be based anywhere in the US with the exception of Delaware, Nevada, Ohio, Oregon, Hawaii, New Mexico and West Virginia and many roles can be based internationally.

For locations outside of the US and Ireland, the employment contracts are powered by Remote.com (all Shippo perks still apply - including equity!). What we want to emphasize is that you can be successful at Shippo regardless of location.

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