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Sift

Senior Engineering Manager, ML Platform

  • Hybrid
  • 6+ years

Salary

$240,000 - 340,000/ year

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Description

The Machine Learning team — internally known as "Potato Radius" — builds the training pipelines, feature infrastructure, and evaluation systems behind every score Sift returns, across more than 700 customers and a trillion-plus events a year. We are Sift's Data Science and ML Engineering team responsible to ship models fast, prove they work, and trust them in production.

Responsibilities

  • Lead and grow the team: Own the roadmap, execution, and quality of the systems that train, evaluate, and serve Sift's ML models in production, leading a team of ML platform engineers and data scientists.
  • Stay technical: Review designs, unblock engineers on hard problems, and make credible calls on architecture and trade-offs.
  • Drive customer POVs: Partner directly with strategic customers and Sales/Solutions Engineering on technical proof-of-value engagements, translating customer requirements into platform capabilities.
  • Reduce technical debt: Drive a sustained, measurable reduction in technical debt across the ML platform, balancing new feature delivery with the health of existing systems.
  • Build evaluation frameworks: Mature the systems that give Data Science and ML Engineering fast, trustworthy signals on model quality before and after deployment.
  • Automate the ML lifecycle: Identify repeatable, manual processes across training, evaluation, deployment, and monitoring, and drive their automation.
  • Partner cross-functionally: Align platform investments with business priorities alongside Data Science, Core Infrastructure, Product, and Customer Success.
  • Technical Stack
  • GCP, AWS, Spark, Kafka, Kubernetes, Docker, Databricks, Python
  • What Would Make You a Strong Fit
  • 8+ years of overall hands-on engineering experience, including 4+ years managing software, data science or machine learning engineering teams.
  • Experience managing Data Scientist and/or in-depth knowledge for data science.
  • Deep technical fluency in machine learning systems: model training pipelines, feature engineering, model serving, and evaluation at production scale.
  • Proven track record leading technical customer engagements or POVs, including direct interaction with enterprise customers.
  • Demonstrated success reducing technical debt in a live, high-traffic production system without stalling feature delivery.
  • Experience designing or scaling evaluation frameworks (offline and/or online) for machine learning models.
  • Track record of identifying manual, repeatable engineering processes and driving their automation.
  • Experience hiring, mentoring, and developing engineering talent.
  • B.S. or MS/Phd in Computer Science (or related technical discipline), or equivalent practical experience.
  • Bonus Points
  • Experience with large-scale distributed ML infrastructure such as Spark, Flink, Databricks, or similar.
  • Familiarity with fraud detection, risk, or trust & safety domains.
  • Hands-on experience with GCP or AWS ML infrastructure.
  • Experience with streaming architectures (e.g., Kafka) and containerized/orchestrated deployments (Docker, Kubernetes).
  • Familiarity with using AI coding assistants (e.g., Claude Code) to accelerate development.

Requirements

  • We're hiring a Senior Engineering Manager to lead this team. You're a manager who's inspiring and technical, and who knows how to bring focus to what matters now without losing sight of the long term. You value collaboration and transparency, operate with a get-stuff-done mindset, and bring the technical depth and bias for shipping to spot the manual, brittle, or duplicated work that's quietly slowing the team down. You build a culture of mentorship, give regular and constructive feedback, set clear goals, and grow your team by hiring effectively.
  • Projects You Might Lead
  • Launch a unified model evaluation framework that gives Data Science fast, trustworthy, apples-to-apples comparisons before a model ever reaches production or shadow traffic.
  • Evolve core feature infrastructure — including a new global feature store — to improve accuracy and unlock faster experimentation.
  • Bring a fresh approach to model configuration, replacing tribal knowledge and manual gating with auditable, safely-controlled releases.
  • Introduce agentic, AI-assisted tooling into customer investigations, automating repetitive data pulls and validation so analysts spend their time on judgment calls, not manual digging.
  • Build automation that detects an active fraud attack, adjusts score calibration in real time, and cleanly reverts once it subsides.

Conditions

Employment Type: Full time, Hybrid

Benefits

  • Competitive total compensation package
  • 401k plan
  • Medical, dental and vision coverage
  • Wellness reimbursement
  • Education reimbursement
  • Flexible time off
  • Let’s build it together:
  • At Sift, we are intentionally building a diverse, equitable, and inclusive workplace. We believe that diversity drives innovation, equity is a fundamental right, and inclusion is a basic human need. We envision a place where all Sifties feel secure sharing their authentic selves and diverse experiences with their teams, their customers, and their community – ultimately using this empowerment and authenticity to build trust and create a safer Internet.
  • This document provides transparency around how Sift handles the personal data of job applicants: https://sift.com/recruitment-privacy
  • A little about us:
  • Sift is the AI-powered fraud platform securing digital trust for leading global businesses. Our deep investments in machine learning and user identity, a data network scoring 1 trillion events per year, and a commitment to long-term customer success empower more than 700 customers to grow fearlessly. Global brands rely on Sift to unlock growth and deliver seamless consumer experiences. Visit us at sift.com and follow us on LinkedIn .

Where you’d work

Part of the week in the office

You can work from

  • United States

About the company

Sift

Offices in Seattle, United States, San Francisco, United States

Your chances

Worth a look before you spend an evening tailoring a CV for it.

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  • 3 red flags

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1 red flag

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7 checks

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  • Must-haves
Details13 facts · Role, Location, Compensation, Employment
Tech stack
  • Python
  • AWS
  • Kubernetes
  • Docker
  • Kafka
  • Spark
  • Databricks
  • Flink
Seniority
Manager
Type
Full-time
Equity
Equity offered
Specialty
ML
Region
United States
Show 7 more factsShow less

Role

Category
Data & Analytics
Specialty
ML
Seniority
Manager
Experience
8+ years
Tech stack
  • Python
  • AWS
  • Kubernetes
  • Docker
  • Kafka
  • Spark
  • Databricks
  • Flink

Location

Work model
Hybrid
Region
United States
Offices
  • Seattle, United States
  • San Francisco, United States
Remote from
  • United States

Compensation

Salary
$240,000 - 340,000 / year
Pay period
Annual
Equity
Equity offered

Employment

Type
Full-time

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