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Principal Python Engineer - ML Infrastructure

Alignerr

RemoteFull timeMid levelPosted today
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About the role

Principal Python Engineer — ML Infrastructure (AI Training) About The Role What if your deep Python expertise could directly shape the infrastructure behind the world's most advanced AI systems? We're looking for a Principal Python Engineer to design and build the data pipelines, annotation tooling, and evaluation systems that leading AI labs depend on to train and improve next-generation models.

This is a fully remote, high-impact contract role for a seasoned engineer who thrives at the intersection of systems programming, distributed computing, and AI infrastructure. If you've spent years building production-grade Python at scale and want your work to matter at the frontier of AI — this is it.

  • Organization: Alignerr
  • Type: Hourly Contract
  • Location: Remote
  • Commitment: 20–40 hours/week

What You'll Do

  • Design, build, and optimize high-performance Python systems supporting AI data pipelines and model evaluation workflows
  • Develop full-stack tooling and backend services for large-scale data annotation, validation, and quality control
  • Improve reliability, performance, and safety across production Python codebases used by top AI research teams
  • Collaborate with data, research, and engineering teams to accelerate model training and evaluation workflows
  • Identify bottlenecks and edge cases in data and system behavior — then implement scalable, lasting fixes
  • Drive architectural decisions through synchronous design reviews with senior technical stakeholders

Who You Are

  • Native or fluent English speaker with strong written and verbal communication skills
  • Full-stack developer with a deep systems programming foundation and 5+ years writing production Python for large-scale infrastructure or platform engineering
  • Expert in distributed computing systems and advanced asynchronous concurrency patterns
  • Deep understanding of Python internals — GIL limitations, memory profiling, and compute-heavy performance optimization
  • Comfortable driving technical strategy and architectural decisions independently
  • Available to commit 20–40 hours per week on a consistent basis

Nice to Have

  • Prior experience with data annotation, data quality systems, or model evaluation pipelines
  • Familiarity with AI/ML workflows, model training, or benchmarking infrastructure
  • Background in distributed systems design or developer tooling

Why Join Us

  • Work directly with leading AI research labs on real production systems at the frontier of AI development
  • Fully remote and flexible — work from anywhere on a schedule that fits your life
  • Freelance autonomy with the structure and focus of meaningful, high-stakes engineering work
  • Make a direct, tangible impact on the infrastructure powering the next generation of AI
  • Potential for ongoing engagement and expanded scope as projects evolve

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