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Senior Applied Machine Learning Engineer - Asset Intelligence

United States, San Francisco · Job Posted February 18, 2026
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Job Description

We are seeking a highly skilled and motivated Senior Applied Machine Learning Engineer to guide the technical direction and architecture of our Predictive Maintenance and Asset Intelligence initiatives. You’ll combine deep ML expertise with strong software engineering and leadership skills—mentoring engineers, scaling systems, and driving the roadmap for AI-enabled maintenance intelligence across thousands of industrial sites. This role sits at the intersection of ML architecture, IoT data systems, and product impact, shaping the foundation for MaintainX’s predictive and generative AI strategy.

Job Responsibility

  • Lead technical direction for predictive maintenance, anomaly detection, and LLM-powered intelligence across MaintainX products
  • Architect end-to-end ML systems—from data ingestion and feature engineering to model training, deployment, and monitoring
  • Mentor a growing team of ML and data engineers, instilling best practices for experimentation, evaluation, and model lifecycle management
  • Partner with product and engineering leaders to align AI roadmap with customer needs and business goals
  • Design reliable data and feedback loops that connect customer telemetry and operator feedback to model retraining
  • Drive performance optimization through techniques like quantization, distillation, and scalable inference serving
  • Work with LLM frameworks (LangChain, LlamaIndex, Hugging Face) to build reasoning systems and agentic workflows for asset and work intelligence
  • Ensure ML infrastructure meets production standards for latency, reliability, explainability, and security

Requirements

  • 7+ years of experience in Machine Learning, Data Science, or Applied AI
  • Expertise in Python, and strong familiarity with PyTorch, TensorFlow, and cloud ML stacks (AWS, Databricks, or similar)
  • Proven experience deploying production ML systems at scale
  • Strong background in LLMs, time-series modeling, and anomaly detection for real-world data
  • Demonstrated ability to lead architectural decisions, mentor engineers, and collaborate across product, data, and platform teams
  • Knowledge of MLOps tooling (Docker, Kubernetes, Weights & Biases, MLflow, SageMaker)
  • Advanced degree (MS/PhD) in Computer Science, Machine Learning, or related field preferred

Nice to have

  • Experience with OCR for extracting structured data from documents
  • Background in time-series modeling for predictive maintenance and anomaly detection
  • Familiarity with Industrial IoT systems (sensors, telemetry, edge computing)
  • Experience applying reinforcement learning or agentic architectures for decision-making and control systems
  • Contributions to open-source ML frameworks or research in reliability, explainability, or digital twins

What we offer

  • Competitive salary and meaningful equity opportunities
  • Healthcare, dental, and vision coverage
  • 401(k) / RRSP enrollment program
  • Take what you need PTO
  • A high impact Culture: You’ll work with Smart, Humble Optimists across the globe
  • Meritocratic environment where ideas and outcomes are publicly celebrated

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