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AI​/ML & Algorithm Engineer

Job in Idaho Falls, Bonneville County, Idaho, 83401, USA
Listing for: Salute Mission Critical LLC.
Full Time position
Listed on 2026-06-27
Job specializations:
  • IT/Tech
    AI Engineer (Applied/Software), Machine Learning/ ML Engineer
Salary/Wage Range or Industry Benchmark: 180000 - 220000 USD Yearly USD 180000.00 220000.00 YEAR
Job Description & How to Apply Below

AI/ML & Algorithm Engineer

Full Time Dedicated United States, US

2 days ago Requisition

Salary: $ Annually

Salute is a leading provider of cutting‑edge Data Center Infrastructure Services, dedicated to serving data center clients worldwide. We pride ourselves on delivering sustainable solutions, unparalleled reliability, and outstanding customer service. As we continue to grow, we are seeking a dynamic and experienced AI/ML & Algorithm Engineer to join our team and drive our relationships with hyperscale clients to new heights.

We are seeking an AI/ML and Algorithm Engineer to design, build, and protect the core intelligence layer of our enterprise platform. This role owns the development of multi-agent AI systems, novel scoring and optimization algorithms, large language model applications, and closed‑loop autonomous workflows that operate at scale across complex physical environments. You will translate cutting‑edge AI research into production systems, identify novel algorithmic approaches worthy of patent protection, and establish the technical foundation for how the organization uses AI to drive measurable operational outcomes.

This is a high‑impact, technically deep role that sits at the frontier of enterprise AI deployment.

Key Responsibilities
  • Design and implement production multi‑agent AI systems: agent coordination, tool use, context and memory management, structured output, and human-in-the-loop ratification loops.
  • Develop novel algorithms for scoring, ranking, prioritization, and optimization – including multi‑dimensional impact scoring systems that rank ideas or proposals by value, feasibility, revenue potential, and strategic alignment.
  • Build LLM‑powered workflows: retrieval‑augmented generation (RAG), prompt pipelines, fine‑tuning, structured extraction, and domain‑adapted language models for enterprise contexts.
  • Architect closed‑loop AI systems where agent observations feed structured proposals for human review and ratification, then feed back into continuous improvement cycles.
  • Identify novel algorithmic and AI system designs that represent patentable inventions; author invention disclosures and collaborate with patent counsel through prosecution.
  • Lead evaluation and benchmarking of AI model performance in production: accuracy, latency, cost, reliability, and domain‑specific accuracy metrics.
  • Drive build‑vs‑buy‑vs‑partner decisions for AI components; design integration patterns for third‑party foundation models, AI APIs, and specialized ML services.
  • Establish AI governance practices: model cards, explainability tooling, bias evaluation, auditability, and responsible deployment standards.
  • Design AI and agent systems that operate across decentralized, federated data domains – enabling intelligent query routing, context assembly, and inference across disparate operational data sources without requiring centralized data pipelines; architect retrieval and grounding strategies that respect data sovereignty and domain ownership as the organization transitions from siloed data stores to a federated intelligence layer.
Required Qualifications
  • 8+ years in AI/ML engineering or research, with at least 3 years building and operating production AI systems at a senior IC level.
  • Deep expertise in large language models and agentic frameworks (Lang Chain, Lang Graph, Auto Gen, CrewAI, or equivalent); strong understanding of prompt engineering and model behavior.
  • Proven ability to develop novel algorithmic approaches – not just apply existing frameworks – and document them rigorously for IP purposes.
  • Strong ML fundamentals: optimization theory, probabilistic modeling, statistical learning, reinforcement learning, and deep learning architectures.
  • Proficiency in Python and at least one deep learning framework (PyTorch or JAX); familiarity with ML infrastructure (MLflow, Weights & Biases, Ray, or equivalent).
  • Experience with vector databases, embeddings, semantic search, and knowledge graph architectures as components of production AI systems.
  • Demonstrated ability to deploy and maintain AI systems in production: monitoring, versioning, rollback strategies, and performance degradation detection.
Preferred…
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