Full-Time

Senior Machine Learning Engineer

Updated on 8/1/2026

AZX

AZX

11-50 employees

Provides bespoke AI solutions for enterprises

Compensation Overview

$140k - $220k/yr

+ Bonus eligibility + Equity

No H1B Sponsorship

Seattle, WA, USA

Remote

Remote within the United States or Canada; travel to the Seattle area for the final interview, company summits twice yearly, and potentially 10–20% onsite with clients.

Category
AI & Machine Learning (1)
Required Skills
LLM
Kubernetes
MLOps
Rust
Python
TensorFlow
CUDA
PyTorch
Graph Databases
Apache Spark
Machine Learning
MLflow
Docker
RAG
Terraform
LangChain
C/C++
Computer Vision
Reinforcement Learning

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Requirements
  • At least 5 years of experience building and deploying machine learning systems in production environments.
  • Expert-level Python skills and experience with PyTorch or TensorFlow.
  • Deep expertise in at least one of natural language processing, computer vision, time series, or reinforcement learning.
  • Generative artificial intelligence and large language model capabilities, such as prompt engineering, retrieval-augmented generation, fine-tuning, LangChain, or model evaluation tooling.
  • Experience with machine learning operations and infrastructure automation, including continuous integration and continuous delivery for machine learning, Docker, Kubernetes, Terraform, MLflow, or Kubeflow.
  • Strong engineering fundamentals in system design, scalability, testing, and monitoring.
  • A track record of translating ambiguous business problems into production machine learning solutions.
  • Experience with cloud machine learning platforms such as AWS SageMaker, Google Cloud Vertex AI, or Azure Machine Learning.
  • Experience with model validation, reproducibility, monitoring, and bias-variance checks.
  • Ability to collaborate effectively with domain experts and project teams.
  • Ability to make decisions amid ambiguity and course-correct as needed.
  • Currently authorized to work in the United States on a full-time basis.
Responsibilities
  • Turn ambiguous client problems into shipping code.
  • Drive projects from discovery through deployment.
  • Collaborate with client and internal project teams.
  • Design and write clean, scalable code at appropriate quality standards.
  • Design, integrate, and productionize machine learning solutions, including predictive models, generative artificial intelligence systems, physics-informed machine learning, and digital twins.
  • Collaborate with domain experts in energy, real estate, and climate to translate business needs into machine learning solutions.
  • Advocate for engineering best practices and a positive development culture.
  • Deliver machine learning work across client engagements and internal platform capabilities.
Desired Qualifications
  • Experience in both startup and enterprise environments.
  • Previous work in energy, real estate, utilities, climate, or related fields.
  • Experience with advanced machine learning and artificial intelligence frameworks and techniques such as PyTorch Lightning, JAX, Hugging Face, or ONNX optimizations.
  • Experience with lower-level or performance-focused languages for machine learning acceleration, such as C++, Rust, or CUDA.
  • Experience with large-scale data and distributed training paradigms such as Spark, Ray, Horovod, or Dask.
  • Experience with advanced data infrastructure such as vector databases, graph databases, feature stores, or data lakes.

AZX provides bespoke AI solutions for critical, asset-heavy industries such as energy, real estate, and supply chain. It embeds dedicated AI teams within client organizations to build custom models and applications that integrate with existing systems, solving internal processes, unstructured data, and regulatory challenges. Its offerings include AI growth strategies, disruption management, and AI-powered agents, built on platforms from Azure, AWS, GCP, OpenAI, and Anthropic. As a Public Benefit Corporation with a climate mission, AZX aims to accelerate sustainability and decarbonization by delivering industry-specific, tightly integrated AI solutions.

Company Size

11-50

Company Stage

N/A

Total Funding

N/A

Headquarters

Seattle, Washington

Founded

2024

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Simplify Jobs

Simplify's Take

What believers are saying

  • Puget Sound Energy pilots cut outages 25% in 2026, boosting AZX custom integration demand.
  • CBRE's March 2026 gen AI platform exposes legacy data gaps AZX fills precisely.
  • Franklin Energy's February 2026 DOE grant opens AI subcontracting for AZX expertise.

What critics are saying

  • Microsoft Azure Copilot steals Puget Sound Energy with low-cost energy AI in 6 months.
  • OpenAI enterprise agents commoditize AZX models, forcing Franklin Energy to APIs in 12 months.
  • Washington HB 2045 mandates block AZX proprietary integrations starting July 2026.

What makes AZX unique

  • AZX builds bespoke AI integrating digital twins and physics models into client systems.
  • Client-centric model embeds teams to solve energy and real estate operational challenges.
  • Avoids SaaS and consulting traps by prioritizing code over PowerPoint for transformations.

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Benefits

Health Insurance

Unlimited Paid Time Off

Company Equity

Remote Work Options

Growth & Insights and Company News

Headcount

6 month growth

-11%

1 year growth

-11%

2 year growth

-11%
GeekWire
Jan 28th, 2026
Seattle tech veterans raise $6M for AZX to build custom AI solutions for energy industry

AZX, a Bellevue, Washington-based startup building custom AI solutions for utilities and energy companies, has raised $6 million in pre-seed funding. The round was led by AI2 Incubator and SFV, with participation from Founders' Co-op, Kompas, Powerhouse Ventures and others. Founded in October 2024 by tech veterans Aaron Goldfeder, Rich Evans and Michael Albrecht, AZX has grown to 20 employees. The company reported first-quarter revenue increased tenfold year-over-year. AZX combines various AI tools including analytics, machine learning and digital twins to build bespoke applications that integrate into clients' existing systems. Current customers include Puget Sound Energy, CBRE and Franklin Energy. The public benefit corporation aims to help address climate-related challenges as utilities invest hundreds of billions in grid modernisation.