Senior Machine Learning Engineer @Air
Artificial Intelligence
Salary unspecified
Remote Location
πŸ‡ΊπŸ‡Έ USA Only
Employment Type full-time
Posted 4wks ago

[Hiring] Senior Machine Learning Engineer @Air

4wks ago - Air is hiring a remote Senior Machine Learning Engineer. πŸ’Έ Salary: unspecified πŸ“Location: USA

Role Description

We are seeking an experienced Senior Machine Learning Engineer to join our AI/ML team and build the infrastructure that powers the development, evaluation, deployment, and continuous improvement of our language models and AI systems.

As our AI capabilities expand, we need robust infrastructure for moving models from experimentation into production. This role will own critical parts of that lifecycle, including:

  • LLMOps
  • Fine-tuning infrastructure
  • Model evaluation
  • Dataset pipelines
  • Experiment management
  • Model serving
  • Production observability

This is an engineering-heavy ML role. You will build platforms and infrastructure that allow AI engineers and researchers to rapidly experiment with models, datasets, and training techniques while maintaining the reproducibility, scalability, and reliability required for production systems.

You will work across the full model lifecycle - from dataset creation and experimentation through training, evaluation, deployment, monitoring, and iteration.

This role is a full-time position based in our Pittsburgh, PA office or open to Remote Opportunities. This role may require up to 25% travel, including periodic travel to our Pittsburgh, PA and Arlington, VA offices for team collaboration, planning activities, and in-person meetings.

Qualifications

  • U.S. Citizenship is required
  • 5+ years of experience building production machine learning systems, ML infrastructure, distributed systems, or similar technical systems.
  • Deep experience designing, building, and operating production ML infrastructure or ML platforms.
  • Experience building infrastructure for training, fine-tuning, evaluating, deploying, and monitoring large language models or other large-scale deep learning models.
  • Experience with LLM fine-tuning and post-training workflows, including techniques such as supervised fine-tuning, LoRA/QLoRA or other parameter-efficient approaches, and preference optimization.
  • Strong understanding of the modern LLM lifecycle, including data preparation, training, evaluation, model artifacts, deployment, inference, monitoring, and iteration.
  • Experience building reproducible ML pipelines involving dataset versioning, experiment tracking, model versioning, and automated evaluation.
  • Experience building and operating production GPU infrastructure across AWS, GCP, Azure, or dedicated GPU providers, including training and/or inference workloads.
  • Strong understanding of distributed systems and the challenges involved in running computationally intensive ML workloads at scale.
  • Strong programming experience in Python and experience building production-quality software.
  • Deep experience with containers, Kubernetes, and cloud platforms such as AWS, GCP, or Azure.
  • Experience designing scalable APIs, services, asynchronous workloads, and data-processing pipelines.
  • Strong understanding of observability and operational reliability for production ML systems.
  • Comfortable debugging failures across training code, datasets, models, GPUs, distributed systems, and cloud infrastructure.
  • Able to move between ML experimentation and infrastructure engineering, understanding the needs of researchers and AI engineers while building systems that make those workflows scalable and reproducible.
  • Comfortable working in a rapidly evolving field where tooling, models, and best practices change quickly.

Requirements

  • Current possession of a U.S. security clearance, or the ability to obtain one with our sponsorship
  • Experience in or exposure to the nuances of a startup or other entrepreneurial environment
  • Experience building secure code execution environments or sandboxes for AI agents.
  • Experience with multi-agent architectures, agent-to-agent communication, or distributed agent execution.
  • Experience with fine-tuning, post-training, reinforcement learning, or synthetic data generation.
  • Experience building AI observability, tracing, and debugging infrastructure.
  • Experience optimizing inference latency, throughput, GPU utilization, or model-serving costs.
  • Experience with AI security, adversarial testing, or securing agentic systems.
  • Experience working in government, defense, or other mission-critical environments.

Benefits

  • We firmly believe that past performance is the best indicator of future performance.
  • If you thrive while building solutions to complex problems, are a self-starter, and are passionate about making an impact in global security, we’re eager to hear from you.

Company Description

Air is the leader in Enterprise Readiness. Our mission is to establish readiness as a real-time condition that is continuously achieved. Today, a dangerous Readiness Gap exists between what the front line needs and what is delivered. Our AI-native platform, Air Enterprise Readiness, aligns development, production, delivery, and sustainment into one coordinated execution system for government agencies and industrial suppliers. By revealing true capacity, exposing real constraints, coordinating resources, and executing at the speed of operational demands, the front line gets what it needs to succeed.

Before You Apply
️
πŸ‡ΊπŸ‡Έ Be aware of the location restriction for this remote position: USA Only
β€Ό Beware of scams! When applying for jobs, you should NEVER have to pay anything. Learn more.
Senior Machine Learning Engineer @Air
Artificial Intelligence
Salary unspecified
Remote Location
πŸ‡ΊπŸ‡Έ USA Only
Employment Type full-time
Posted 4wks ago
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πŸ‡ΊπŸ‡Έ Be aware of the location restriction for this remote position: USA Only
β€Ό Beware of scams! When applying for jobs, you should NEVER have to pay anything. Learn more.
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