AI Engineer V

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
Posted
2 days ago
Freshness
Confirmed live today

Market check

Salary context

Above market

How this pay compares to similar roles

Similar $204k
This role $246k
$150k most similar roles pay here $274k

This role pays more than 84% of similar roles. Most pay $162,000–$246,150 — the shaded band above. At the midpoint, this role pays about $246k versus about $204k 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 836 open roles on FindRole.

Listed pay typically runs $197,300–$225,100 across 829 roles with salary data.

Most-posted roles

View all roles at Capital One Financial

At a glance

TL;DR · AI Engineer V

AI Engineer 5 (MLX, Agentic AI, Gen AI platform Services) joins the Intelligent Foundations and Experiences team to develop and deploy proprietary AI solutions that enhance products for millions of customers. This role involves designing, testing, and supporting software components including foundation model training, large language model inference, multi-agent workflows, similarity search, guardrails, and model evaluation. The engineer will optimize performance metrics like scalability, cost, latency, and throughput while leading cost-performance governance reviews and mentoring other engineers. Key technologies include PyTorch, Huggingface, VectorDBs, AWS Ultraclusters, and programming languages such as Python, Go, Scala, CUDA, C++, C#, and Java. The work focuses on building high-performance AI infrastructure and multi-model orchestration pipelines to solve complex problems in the banking domain by integrating LLMs and retrieval-augmented components into unified production systems.

What does a AI Engineer earn in Virginia?

Median $246150 from 55 postings across 4 companies.

See salary data

What you'll do

  • Develop and deploy AI software components including foundation model training, LLM inference, and multi-agent workflows.
  • Implement state-of-the-art optimization techniques to improve performance, scalability, cost, and latency of production systems.
  • Design and optimize multi-model orchestration pipelines integrating LLMs, vector search, and domain-specific models.
  • Lead cost-performance governance reviews by tracking GPU utilization, model throughput, and inference efficiency.
  • Lead design councils to ensure technical consistency and compliance with AI engineering standards.
  • Mentor senior engineers to foster cross-domain learning and improve organizational technical maturity.
  • Translate complex research into production-ready features for large-scale banking applications.

What we're looking for

  • Bachelor's degree in Computer Science, AI, Electrical Engineering, Computer Engineering, or related fields plus at least 6 years of experience developing AI and ML algorithms or technologies.
  • Master's degree in Computer Science, AI, Electrical Engineering, Computer Engineering, or related fields plus at least 4 years of experience developing AI and ML algorithms or technologies.
  • 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 and ML algorithms or technologies using Python, C++, C#, Java, CUDA, or Golang (preferred).
  • Experience developing and applying state-of-the-art techniques for optimizing training and inference software to improve hardware utilization, latency, throughput, and cost (preferred).

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