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Advanced Space · Machine Learning

Machine Learning Engineer (5-8 yrs)

Where
Westminster, CO
Experience
5–8 yrsstated in the description
Pay
$124K–$171Kbase, as stated on the posting
Posted
Already listed when Unlisted started watching this board (6 Oct 2026)
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Advanced Space | Machine Learning Engineer (5–8 Years) | Full-time | Hybrid

We’re going to the Moon. Think you’ve got what it takes?

About the Role

At Advanced Space, we're enabling humanity's return to the Moon and building the technologies that will take us to Mars and beyond. We're looking for a Machine Learning Engineer with 5–8 years of experience to develop innovative ML-driven capabilities that support spacecraft missions, autonomy, navigation, mission planning, and advanced engineering solutions.

This is a hands-on technical role focused on translating complex mission and engineering challenges into practical, data-driven solutions. You'll take ownership of technically complex projects from problem formulation and model development through quantitative evaluation, integration, and operational deployment. You'll work with modern machine learning techniques, including statistical learning, probabilistic modeling, optimization, deep learning, and reinforcement learning, to solve real-world aerospace challenges.

We're looking for someone who enjoys tackling ambiguous technical problems, has a strong foundation in machine learning and software engineering, and is excited to collaborate across disciplines to develop capabilities that support real space missions.

This position is open to U.S. Persons (U.S. citizens or lawful permanent residents) only. Visa sponsorship is not available.

About Advanced Space

Advanced Space exists to enable the sustainable exploration, development, and settlement of space through innovative software, mission services, and technology solutions. As the owner and operator of NASA's CAPSTONE™ mission and the Prime Contractor for AFRL's Oracle mission, we're helping shape the future of cislunar exploration while supporting commercial, civil, and national security customers.

Our team combines deep technical expertise with an entrepreneurial mindset. We move quickly, collaborate across disciplines, and empower every engineer to make meaningful contributions. If you're passionate about solving challenging problems and seeing your work fly in space, you'll fit right in.

What You'll Actually Do

Develop machine learning solutions for complex engineering challenges.

Translate mission, operations, and engineering needs into well-defined ML and data-driven problems. Establish success metrics, baselines, datasets, evaluation plans, and quantitative acceptance criteria to develop solutions that address real-world mission requirements.

Design and implement ML-enabled capabilities.

Select, develop, evaluate, and maintain machine learning solutions that support spacecraft mission planning, operations, autonomy, navigation, physical-system modeling, signal extraction, and internal engineering workflows. Apply appropriate methods based on mission needs, data availability, computational constraints, and operational requirements.

Own technically complex projects from concept to deployment.

Take ownership of technical work packages from initial problem formulation through implementation, integration, documentation, and operational handoff. Define technical approaches, assess trade-offs, identify risks, and communicate architectural decisions and recommendations to stakeholders.

Build reliable and reproducible ML workflows.

Develop and maintain end-to-end machine learning workflows, including data curation and validation, experiment tracking, model and data versioning, configuration management, automated regression testing, and performance monitoring. Apply modern software engineering practices to ensure solutions are maintainable, scalable, and reliable.

Evaluate model performance and validate results.

Design rigorous evaluation strategies and domain-appropriate metrics to assess nominal, edge-case, and off-nominal performance. Identify data leakage, distribution shifts, and other factors that could impact model reliability. Use quantitative analysis and experimentation to validate model performance and inform technical decisions.

Integrate ML capabilities into aerospace systems.

Collaborate with navigation, mission design, flight software, systems engineering, and operations teams to integrate machine learning solutions into broader engineering architectures and workflows. Ensure ML capabilities align with mission requirements, system constraints, and operational needs.

Research and apply emerging technologies.

Read, synthesize, and apply relevant technical literature, emerging research, and innovative methodologies in machine learning, optimization, and autonomy. Evaluate new approaches and identify opportunities to advance Advanced Space's technical capabilities.

Communicate technical findings and recommendations.

Document technical approaches, assumptions, results, limitations, and recommendations. Present findings through design reviews, technical documentation, and stakeholder discussions, translating complex ML concepts into clear, actionable insights for multidisciplinary teams.

Leverage modern AI-assisted engineering tools.

Use company-approved AI-assisted and agentic engineering tools responsibly to support software development, documentation, research, and analysis. Critically evaluate generated outputs and apply appropriate security, source-provenance, reproducibility, and technical-validation practices.

 

Who Thrives Here

Bonus Points if You Have Experience With

Success is Measured By

 

Why Join Advanced Space

Compensation & Benefits

Advanced Space is an Equal Opportunity Employer. We celebrate diversity and are committed to creating an inclusive workplace for all employees. Employment decisions are made without regard to race, color, religion, sex, national origin, age, disability, veteran status, or any other protected characteristic under applicable law.