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Evan Cox Email & Phone Number

Engineering Leadership @ Anthropic | ex-Netflix, ex-Airbnb, ex-MSFT at Anthropic
Location: United States 12 work roles 3 schools
1 work email found @netflix.com 6 phones found area 415, 650, and 888 LinkedIn matched
✓ Verified August 2026 4 data sources Profile completeness 100%

Contact Signals · 1 work email · 6 phones

Work email e****@netflix.com
Direct phone (415) ***-****
LinkedIn Profile matched
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Current company
Role
Engineering Leadership @ Anthropic | ex-Netflix, ex-Airbnb, ex-MSFT
Location
United States

Who is Evan Cox? Overview

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Quick answer

Evan Cox is listed as Engineering Leadership @ Anthropic | ex-Netflix, ex-Airbnb, ex-MSFT at Anthropic, based in United States. AeroLeads shows a work email signal at netflix.com, phone signal with area code 415, 650, 888, and a matched LinkedIn profile for Evan Cox.

Evan Cox previously worked as Member of Technical Staff at Anthropic and Engineering Manager: Model Development, Inference, and GenAI Infrastructure at Netflix. Evan Cox holds M.S., Computer Science Concentration In Artificial Intelligence from Stanford University.

Company email context

Email format at Anthropic

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{first_initial}{last}@netflix.com
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AeroLeads found 1 current-domain work email signal for Evan Cox. Compare company email patterns before reaching out.

Profile bio

About Evan Cox

Engineering, Machine Learning, Data Science

Listed skills include Machine Learning, Python, C, Java, and 9 others.

Current workplace

Evan Cox's current company

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Anthropic
Anthropic
Engineering Leadership @ Anthropic | ex-Netflix, ex-Airbnb, ex-MSFT
AeroLeads page
12 roles

Evan Cox work experience

A career timeline built from the work history available for this profile.

Member Of Technical Staff

Current

I'm an engineering manager supporting the Inference team working on the frontier of AI capabilities, safety and performance

Jan 2024 - Present

Engineering Manager: Model Development, Inference, And Genai Infrastructure

Los Gatos, Ca, Us

I lead the Model Development and Inference Infrastructure teams as part of the Machine Learning Platform at Netflix. We focus on making the process of taking ML algorithms from idea to production as efficient as possible, regardless of the size, scale, or shape of the problem. Our work powers mature large scale consumer facing ML use cases, experimental early stage 0-1 projects, and generative AI projects.My teams are responsible for easy end-to-end development and productization of ML pipelines, high performance internal training platforms and efficient, flexible inference frameworks. We use a combination of hardware, software, and ML engineering/optimization techniques to deliver a delightful experience to our users, and business value to Netflix.We partner closely with enterprise and open core partners Anyscale (Ray), NVIDIA, AWS, and Outerbounds (Metaflow) to maximize the leverage of external ML innovation for Netflix use cases.

Jul 2020 - Jan 2024

Machine Learning And Data Engineering Manager

San Francisco, Ca, Us

I managed two teams within the Trust organization at Airbnb. The Foundational Modeling team built machine learning algorithms, signals, and infrastructure to make Airbnb as safe and trustworthy as possible. We shipped step function changes in the integrity modeling capabilities within the organization including wide + deep architectures, entity embeddings, unsupervised and supervised deep feature learning, graph embeddings, and sequence modeling. My team was the co-recipient of the inaugural CFO award for fiscal discipline as a result of the good business enabled and fraud reduced via modeling improvements.We also built mission critical ML infrastructure to address the full cycle of machine learning from development, productionization and operation of models and features in production. Reduced MTTD and MTTR for ML failures by ~100x, feature backfilling workflows by 72x, and critical model and data freshness by an order of magnitude.I also managed a data engineering team responsible for rearchitecting critical business intelligence using data engineering best practices. Our improvements improved test coverage, correctness, and reliability by significant margins across the organization.

Nov 2018 - Jul 2020

Software Engineer, Machine Learning

San Francisco, Ca, Us

Nov 2017 - Nov 2018

Data Science Manager And Claims Intelligence Lead

San Francisco, Ca, Us

Managed a machine learning team, and tech lead for 2 full stack squads of software engineers and data scientists totaling 15 people.My ML work on claims risk and behavior detection using on device sensors spawned entirely new lines of business for the company, enabling it to enter the enterprise space. Other key ML improvements increased revenue by X%.

May 2016 - Oct 2017

Software Engineer And Data Scientist

San Francisco, Ca, Us

Worked on a variety of machine learning, infrastructure, and data products as the 6th technical employee. The majority of my granted patents come from my work during this time. Helped scale the customer base > 1000x, and engineering + data science team 10x.

May 2013 - May 2016

Software Development Engineer, Machine Learning

Redmond, Washington, Us

Bing Whole Page Relevance Team --Wrote C++ online query time infrastructure for ranking and featurizing entities from Bing's knowledge graph (Satori). --Created offline pipeline to train and evaluate stochastic gradient boosted tree models for ranking entities from Bing's knowledge graph. Pipeline was used to train some of the first entity ranking models dependent on a wider, richer set of query time, and whole page signals.--Feature engineering, ranking investigation and debugging for whole page entity relevance.

Oct 2012 - May 2013

Pm

Redmond, Washington, Us

PM for the Bing Domains team, specifically Movies, TV, and Shopping.

Mar 2011 - Oct 2012

Research Assistant

Stanford, Ca, Us

Parallel programming languages and AI Gameplaying Research

Jan 2010 - Dec 2010

Teaching Assistant

Stanford, Ca, Us

CS227B, General Game Playing, creating AI agents that play arbitrarily defined games in Game Description Language. CS107. Taught low-level c, scheme, python and concurrent programming to undergraduate Computer Science students.

Sep 2008 - Jun 2010

Search Engineering Intern

Sunnyvale, Ca, Us

Implemented a system for query reformulation/expansion and measuring query similarity. Researched and implemented an alternative profile/document ranking scheme.

Jul 2009 - Sep 2009

Program Manager Intern

Redmond, Washington, Us

Visual Studio

Jun 2008 - Sep 2008
3 education records

Evan Cox education

M.S., Computer Science Concentration In Artificial Intelligence

Stanford University

B.S., Symbolic Systems Concentration Decision Making And Rationality

Stanford University

Education record

Redwood High School
FAQ

Frequently asked questions about Evan Cox

Quick answers generated from the profile data available on this page.

What company does Evan Cox work for?

Evan Cox works for Anthropic.

What is Evan Cox's role at Anthropic?

Evan Cox is listed as Engineering Leadership @ Anthropic | ex-Netflix, ex-Airbnb, ex-MSFT at Anthropic.

What is Evan Cox's email address?

AeroLeads has found 1 work email signal at @netflix.com for Evan Cox at Anthropic.

What is Evan Cox's phone number?

AeroLeads has found 6 phone signal(s) with area code 415, 650, 888 for Evan Cox at Anthropic.

Where is Evan Cox based?

Evan Cox is based in United States while working with Anthropic.

What companies has Evan Cox worked for?

Evan Cox has worked for Anthropic, Netflix, Airbnb, Metromile, and Microsoft.

How can I contact Evan Cox?

You can use AeroLeads to view verified contact signals for Evan Cox at Anthropic, including work email, phone, and LinkedIn data when available.

What schools did Evan Cox attend?

Evan Cox holds M.S., Computer Science Concentration In Artificial Intelligence from Stanford University.

What skills is Evan Cox known for?

Evan Cox is listed with skills including Machine Learning, Python, C, Java, Algorithms, Git, Software Development, and Distributed Systems.

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