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Senior Machine Learning Engineer

United StatesUnited States·San Franciscosenior
Machine Learning EngineerData
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Quick Summary

Overview

About Us Beast Industries is a multifaceted media and entertainment company founded by Jimmy Donaldson, popularly known as MrBeast, the most watched person in the world.

Technical Tools
Machine Learning EngineerData

Beast Industries is a multifaceted media and entertainment company founded by Jimmy Donaldson, popularly known as MrBeast, the most watched person in the world. Renowned for revolutionizing digital content creation, Beast Industries encompasses a diverse portfolio of ventures that extend far beyond its origins on YouTube. With a mission to entertain, inspire, and create significant social impact, Beast Industries operates across various domains including digital media, philanthropy, consumer products, and innovative business initiatives. At Beast Industries, we believe in the transformative power of digital media and its potential to entertain, educate, and effect positive change. Our commitment to innovation, creativity, and philanthropy drives us to explore new frontiers, create unforgettable experiences, and build a legacy that inspires future generations.

Primary: Bay Area (San Francisco / Peninsula)   |   Secondary: NYC

 

We're doing an AI-first engineering rebuild for a company that already has an audience of 100M+ people. This is a zero-to-one build with no legacy constraints, so you get to stand up ML systems the right way from day one. You're here to ship machine learning that creates real, measurable value for a massive consumer audience.

You'll design, build, deploy, and operate ML systems that power the MrBeast ecosystem, bridging data science, software engineering, and platform engineering to ship production-grade capabilities. That means:

  • Build scalable ML systems and services that move real business metrics for an audience of 100M+ people.
  • Own the full lifecycle: pipelines for data processing, feature engineering, training, validation, deployment, and monitoring.
  • Set the bar for AI-first engineering, including how we test new model capabilities and bring them into production.

Responsibilities

~1 min read
  • Design and implement scalable ML systems and services for production.
  • Develop, evaluate, and optimize models against real business problems.
  • Build and maintain ML pipelines across data processing, features, training, validation, and deployment.
  • Establish monitoring, observability, and model-performance tracking.
  • Partner with product, data scientists, and software engineers to define and ship ML solutions.
  • Drive architecture decisions for ML infrastructure and platform capabilities, and cut deployment cycle time.
  • Mentor engineers, set best practices, and make sure systems meet security, reliability, and compliance bars.
  • AI-Native: You live and breathe this: you're already burning through tokens daily, and shipping ML is the job itself.
  • Production ML Builder: Typically 8+ years in software or ML engineering, with strong experience deploying and operating ML systems in production and solid Python and software engineering practice.
  • Systems Thinker: You've designed scalable distributed systems and data-intensive applications, and you know why a model that looks great offline can fail in production.
  • Evidence-Driven Owner: You decide with experimentation and measurable results, and you own outcomes from design through production operation.

Bonus points for MLOps platforms and automated model lifecycle management, cloud-native ML architectures and distributed training, responsible AI and model governance, and leading technical initiatives across multiple teams.

What We Offer

~1 min read
Equity: Highly competitive equity package designed for a foundational hire.
Hybrid Model: Expected ~2 days per week in-office (Bay Area or NYC).
Competitive Salary
Generous Medical (Blue Cross Blue Shield), Dental, Vision and company-paid Life Insurance
Company contributions to employee Health Savings Accounts (HSA)
401k Plan with Safe Harbor company-matching
Flexible vacation policy and paid company holidays
Company-provided technology package
Relocation assistance where applicable, including travel and company-provided housing for the first 90 days

Location & Eligibility

Where is the job
San Francisco, United States
On-site at the office
Who can apply
US

Listing Details

Posted
June 17, 2026
First seen
June 18, 2026
Last seen
June 18, 2026

Posting Health

Days active
0
Repost count
0
Trust Level
60%
Scored at
June 18, 2026

Signal breakdown

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Senior Machine Learning Engineer