Machine Learning Engineer, Payments ML Accelerator

Posted 5 Days Ago
Remote
Senior level
Fintech • Payments
The Role
As a Machine Learning Engineer at Stripe, you will design and build scalable ML platforms, develop deep learning architectures for payment entities, and collaborate with data scientists to enhance product features using machine learning. The role focuses on deploying advanced ML applications and optimizing infrastructure for rapid experimentation.
Summary Generated by Built In

Who we areAbout Stripe

Stripe is a financial infrastructure platform for businesses. Millions of companies—from the world’s largest enterprises to the most ambitious startups—use Stripe to accept payments, grow their revenue, and accelerate new business opportunities. Our mission is to increase the GDP of the internet, and we have a staggering amount of work ahead. That means you have an unprecedented opportunity to put the global economy within everyone’s reach while doing the most important work of your career.

About the team

The Payments ML Accelerator team is developing capabilities that will unlock the proliferation of ML based techniques across Stripe’s payment products. We are developing cutting edge deep learning models tailored to Stripe’s payment data, and infrastructure to enable rapid ML exploration and very fast experiment cycles. We are exploring novel applications powered by ML as well as improving core product features such as detecting fraudulent transactions across all payment methods or optimizing payment acceptance rate.

What you’ll do

As a machine learning engineer, you will design and build platforms and services that are configurable and scalable. You will have the opportunity to build and deploy advanced ML applications and generalizable feature engineering pipelines, with the aim to produce business impact and raise the bar for technical excellence. You will also have the opportunity to contribute to and influence ML architecture at Stripe.

Responsibilities

  • Build and deploy deep learning architectures and feature embeddings for Payment entities such as merchant, issuer, or customer
  • Develop DNN applications and establish the foundation to facilitate increased DNN adoption at Stripe  
  • Design and architect generalizable ML workflows for rapid expansion of existing ML solutions
  • Experiment with advanced ML solutions in the industry and ideate on product applications 
  • Collaborate with our machine learning infrastructure team to leverage new infra services for business solutions
  • Collaborate with data scientists to build ML models

Who you are

We are looking for ML Engineers who are passionate about using ML to improve products and delight customers. You have experience developing streaming feature pipelines, building ML models, and deploying them to production, even if it involves making substantial changes to backend code. You are comfortable with ambiguity, love to take initiative, and have a bias towards action.

Minimum requirements

  • At least 5 years of industry experience doing end-to-end ML
    development on a machine learning team and bringing ML models to production
  • Advanced degree in a quantitative field (e.g. computer science, statistics, physics, …)
  • Proficient in Python, Scala, Spark

Preferred qualifications

  • Knowledge about how to manipulate data to perform analysis, including
    querying data, defining metrics, or slicing and dicing data to
    evaluate a hypothesis.
  • Experience evaluating niche and upcoming ML solutions

Top Skills

Python
Scala
The Company
Seattle, WA
5,600 Employees
Hybrid Workplace
Year Founded: 2010

What We Do

Stripe is a technology company that builds economic infrastructure for the internet. Businesses of every size—from new startups to public companies—use our software to accept payments and manage their businesses online. Our mission is to increase the GDP of the internet.

Learn more at www.stripe.com/jobs.

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