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Machine Learning Engineer - Seattle

Job in Seattle, King County, Washington, 98127, USA
Listing for: Haus Analytics, Inc.
Full Time position
Listed on 2026-09-12
Job specializations:
  • IT/Tech
    Machine Learning/ ML Engineer, AI Engineer (Applied/Software), Data Scientist
Salary/Wage Range or Industry Benchmark: 250000 - 270000 USD Yearly USD 250000.00 270000.00 YEAR
Job Description & How to Apply Below

Location

Seattle, WA

Employment Type

Full time

Location Type

Hybrid

Department Compensation
  • $250K – $270K

Salary ranges are determined by role and level, and within the range individual pay is determined by additional factors including job-related skills, experience, and relevant education or training. Please note that the compensation details listed in this job posting reflect the base salary only, and do not include equity or benefits.

About Haus

Haus is the causal marketing platform top businesses trust to optimize billions in ad spend worldwide. With support from PhD economists, data scientists, and growth experts, Haus’ AI-driven technology translates complex marketing measurement into clear action and outcomes, enabling brands like Dyson, Wayfair, Sonos, Fanduel, Shark Ninja, and Intuit to optimize spend, accelerate growth, and make smarter marketing decisions at scale.

The Role

This role will drive high-impact projects for advanced marketing planning, analysis, and optimization at Haus using optimization, machine learning, and causal inference. We are looking for individuals who not only excel in problem solving and critical thinking, but also are interested and proficient in writing production code, turning ideas to scalable systems. This role specifically will work deeply on the cMMM machine learning problem space.

The role will be a blend of working with applied scientists, data scientists, data engineers and other MLEs to deliver trustworthy results to our customers while focusing on creating processes that help scale the business.

What you’ll do

Drive initiatives from concept to final product delivery, ensuring seamless end-to-end execution: lead or contribute to the design, development, optimization, and product ionization of machine learning (ML) solutions for complex and high-impact problems.

Able to implement probabilistic techniques into reusable statistical libraries, including bootstrapping, statistical tests, and ML models/regressions.

Build and maintain the ML systems that power Haus’ product lines (specifically cMMM).

Review code and designs of teammates, providing constructive feedback.

Lead and collaborate with engineering and cross-functional partners across product, engineering, and science teams to drive system development from ideation to production.

Drive design and implementation of AI (Agentic) workflows for ML pipelines (including model validation)

Mentor ML engineers and raise the organization’s ML bar

Qualifications

PhD or equivalent experience in Computer Science, Engineering, Mathematics or related field

10+ years of industry experience ideally with a focus on Machine Learning Engineer, building and operating production ML systems.

Experience in exploratory data analysis, statistical modeling, hypothesis testing, and experimental design.

Experience working with cross-functional teams (product, science, product ops etc).

Proficiency in one or more object-oriented programming languages (e.g. Python, Go, Java, C++).

Bonus Points

Experience in modern deep learning architectures and probabilistic modeling.

Expertise in the design and architecture of ML systems and workflows.

Experience with optimization techniques, including reinforcement learning (RL), Bayesian methods, and multi-armed bandits.

Experience with MLFlow

Experience with data science or machine learning approaches in marketing and growth

What We Offer:

We’re a high-performance, low-ego team operating in a fast-moving environment. We care deeply about our customers and expect everyone to take full ownership of their work — this is a place where high expectations fuel even higher growth.

If you thrive in ambiguity, take pride in raising the bar, and want to work alongside top-tier peers who challenge and support you,…

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