Senior Machine Learning (MLOps) Engineer, Worldwide Product Marketing

Apple Inc

Confirmed live 2 days ago Trusted

Quick summary

Work type
On-site
Location
Cupertino, CA
Salary
$216,200–$324,800 / yr
Posted
141 days ago
Freshness
Confirmed live 2 days ago

Market check

Salary context

Above market

How this pay compares to similar roles

Similar $225k
This role $270k
$164k most similar roles pay here $342k

This role pays more than 90% of similar roles. Most pay $195,150–$254,750 — the shaded band above. At the midpoint, this role pays about $270k versus about $225k for comparable roles.

Based on 240 similar postings.

Employer

About Apple Inc

Apple Inc. is a multinational technology company known for designing and manufacturing consumer electronics, software, and online services, including the iPhone, Mac, iPad, and App Store. Industry: Consumer Electronics & Software

Apple Inc currently has 1984 open roles on FindRole.

Listed pay typically runs $175,000–$277,600 across 1590 roles with salary data.

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At a glance

TL;DR · Senior Machine Learning (MLOps) Engineer, Worldwide Product Marketing

The Senior Machine Learning (MLOps) Engineer - Worldwide Product Marketing joins the team as a backbone of machine learning infrastructure, bridging the gap between data science and engineering. This role focuses on driving operational excellence across the full ML lifecycle by building, deploying, and optimizing production-ready systems. Key responsibilities include designing automated pipelines for training, evaluation, and deployment while ensuring model observability, prompt versioning, and governance standards. The candidate will utilize Python, SQL/NoSQL databases, and cloud platforms like AWS, Azure, or GCP, alongside container orchestration tools such as Kubernetes. Technical expertise in MLOps platforms including Ray, MLflow, Kubeflow, SageMaker, or Vertex AI is required. Additionally, the role involves using LLM-based tools like Claude, Gemini, and GitHub Copilot to automate workflows, manage CI/CD pipelines via Jenkins or GitHub Actions, and resolve bottlenecks in high-throughput systems.

What you'll do

  • Design and implement advanced ML infrastructure frameworks to accelerate model development and delivery.
  • Build and maintain automated pipelines for model training, evaluation, versioning, and deployment.
  • Establish model observability, incident response, prompt versioning, and feedback loops to ensure system health.
  • Enforce model governance, validation standards, and best practices to ensure reproducibility and compliance.
  • Identify and resolve bottlenecks in ML workflows to improve reliability, latency, and throughput at scale.
  • Integrate LLM-based tools into engineering workflows to automate tasks, generate code, and create technical documentation.

What we're looking for

  • Bachelor's Degree in Software Engineering, Computer Science, Statistics, Data Mining, Machine Learning, Operations Research, or a related field.
  • 8 years of experience in software engineering with demonstrated expertise in large-scale system design and implementation.
  • 10 years of experience building high-throughput, scalable applications or machine learning models in production environments.
  • Proven track record of shipping and maintaining production-grade ML systems end-to-end.
  • Proficiency in Python and familiarity with frameworks such as TensorFlow, PyTorch, or scikit-learn.
  • Experience with distributed systems, databases (SQL/NoSQL), cloud platforms (AWS, Azure, or GCP), and Kubernetes.
  • Hands-on experience with MLOps tools like Ray, MLflow, Kubeflow, SageMaker, or Vertex AI.
  • Experience building CI/CD pipelines for ML workflows and using data orchestration tools like Airflow or Prefect.

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