AI Engineer 5

Capital One Financial

Confirmed live today High trust

Quick summary

Work type
On-site
Location
McLean, VASan Francisco, CACambridge, MASan Jose, CANew York, NY
Salary
$229,900–$262,400 / yr
Employment
Full-time
Posted
13 days ago
Freshness
Confirmed live today

Market check

Salary context

Above market

How this pay compares to similar roles

Similar $217k
This role $246k
$178k $271k
below market most similar roles pay here above market

This role pays more than 86% of similar roles. Most pay $186,900–$246,150 — the blue band above. At the midpoint, this role pays about $246k versus about $217k for comparable roles.

Based on 240 similar postings.

Employer

About Capital One Financial

Capital One Financial is a bank holding company specializing in credit cards, auto loans, banking, and savings products, known for its data-driven approach to consumer and commercial finance. Industry: Financial Services & Banking

Capital One Financial currently has 1917 open roles on FindRole.

Listed pay typically runs $197,300–$225,100 across 1045 roles with salary data.

Most-posted roles

View all roles at Capital One Financial

At a glance

TL;DR · AI Engineer 5

AI Engineer 5 (MLXT) joins the Intelligent Foundations and Experiences team to develop and deploy proprietary AI solutions central to banking operations. You will partner with cross-functional teams to design, test, and support AI software components, including foundation model training, large language model inference, multi-agent workflows, similarity search, and guardrails. The role involves inventing optimization techniques to improve scalability, cost, and latency for large-scale production systems while leading cost-performance governance reviews and mentoring other engineers. You will utilize a technical stack including AWS Ultraclusters, Huggingface, VectorDBs, PyTorch, Python, Go, Scala, CUDA, and Java. This position solves complex technical problems by integrating LLMs and domain-specific models into unified production pipelines to enhance customer interactions and internal workflows through responsible, high-performance AI infrastructure.

What does a AI Engineer earn in Virginia?

Median $246150 from 59 postings across 4 companies.

See salary data

What you'll do

  • Design, develop, test, deploy, and support AI software components including foundation model training and LLM inference.
  • Implement multi-model orchestration pipelines integrating LLMs, vector search, and domain-specific models into unified systems.
  • Invent and introduce state-of-the-art optimization techniques to improve performance, scalability, cost, and latency of production AI.
  • Establish and lead cost-performance governance reviews tracking GPU utilization, model throughput, and inference cost efficiency.
  • Lead team design councils to ensure technical consistency and compliance with AI engineering standards.
  • Mentor Principal and Manager-level AI engineers to foster cross-domain learning and elevate organizational technical maturity.
  • Contribute to the technical vision and long-term roadmap of foundational AI systems.

What we're looking for

  • Bachelor's degree in Computer Science, AI, Electrical Engineering, Computer Engineering, or related fields plus 6 years of AI/ML experience.
  • Master's degree in Computer Science, AI, Electrical Engineering, Computer Engineering, or related fields plus 4 years of AI/ML experience.
  • At least 6 years of experience programming with Python, Go, Scala, CUDA, or Java.
  • Experience leading development of AI systems with tradeoff decisions around cost, latency, throughput, and accuracy (preferred).
  • 7+ years of experience deploying scalable and responsible AI solutions on cloud platforms (preferred).
  • Experience designing, developing, delivering, and supporting complex AI systems (preferred).
  • Experience developing AI/ML algorithms like LLM Inference, Similarity Search, and VectorDBs using Python, C++, C#, Java, CUDA, or Golang (preferred).
  • Experience developing and applying state-of-the-art techniques for optimizing training and inference software (preferred).

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