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E Source

AI/ML Engineer

E Source

AI / ML Engineer developing scalable ML and AI systems for utilities-focused projects. Collaborating with dynamic teams to implement innovative solutions in a rapidly changing landscape.

Posted 7/27/2026full-timeRemote • 🇺🇸 United StatesSeniorLead💰 $115,000 - $145,000 per yearWebsite

Tech Stack

Tools & technologies
AWSAzureCloudGoogle Cloud PlatformPython

About the role

Key responsibilities & impact
  • Collaborate with cross-functional teams to design, develop, and deploy scalable software products that incorporate machine learning and AI models.
  • Build reusable Python packages to support the implementation of ML/AI algorithms and data-processing pipelines.
  • Contribute to the design of AI systems, including components for retrieval-augmented generation (RAG), LLM integration, and agent-based workflows.
  • Develop agentic evaluation and monitoring frameworks to assess model reasoning, consistency, and fairness.
  • Evaluate database design and create optimized performance queries for efficient data processing and retrieval.
  • Break down complex MLE and AI tasks into manageable user and technical stories, ensuring efficient and effective implementation.
  • Ensure high-quality test coverage of ML code and participate in peer reviews to provide valuable recommendations.
  • Stay updated on the latest advances in machine learning engineering, generative AI, and AI system orchestration, and incorporate relevant practices into our workflows.
  • Contribute to continuous delivery and Agile development processes, adhering to best practices in ML and AI engineering.

Requirements

What you’ll need
  • Master’s degree in computer science, software engineering, data science, or a related field (PhD preferred).
  • Minimum of 7 years of professional experience designing, developing, and deploying machine learning software products independently and collaboratively.
  • Strong programming skills in Python, with experience developing reusable packages and automation tools.
  • Familiarity with Databricks for scalable data processing and collaborative analytics.
  • Solid understanding of machine learning systems design concepts, including model lifecycle management, MLOps, and scalable inference.
  • Hands-on experience with cloud infrastructure (Azure, AWS, or GCP), containerization, and CI/CD pipelines.
  • Proficiency with distributed computing frameworks, machine learning packages, and both relational and nonrelational databases.
  • Familiarity with generative AI tools and frameworks (e.g., AutoGen, Hugging Face, LangChain, LangGraph, LlamaIndex) and their integration into enterprise pipelines.
  • Experience developing or evaluating agentic AI systems, AI orchestration, or AI-assisted decision-making workflows is an asset.
  • Excellent problem-solving and analytical skills, with the ability to break down complex tasks into actionable steps.
  • Strong communication and collaboration skills, with a track record of working effectively in cross-functional teams.
  • Knowledge or experience in the utility, power, or energy sectors is a plus.
  • Deep knowledge in Databricks tech stack for AI and data engineering is a plus.

Benefits

Comp & perks
  • Excellent insurance options, including medical, dental, and vision plans; company-paid life insurance; company-paid long- and short-term disability insurance; medical and dependent-care flexible spending plans, and paid parental leave.
  • A flexible time off (FTO) policy that provides paid time away from work, approved by your manager, while ensuring business needs, workload commitments, and appropriate coverage are maintained.
  • A 401(k)/RRSP plan with a 3% employer match.