Core AI Platform Architect - Vice President

icapitalnetwork

New York (NY)

On-site

USD 170,000 - 210,000

Full time

6 days ago
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Benefits offered by this job

Equity
Annual bonus

Job summary

iCapital seeks a Vice President Artificial Intelligence Engineer to lead the design, development, and delivery of production-grade AI systems that drive measurable business outcomes across the firm.

You will own key workstreams, mentor engineers, and partner with stakeholders to ensure AI capabilities meet reliability, scalability, and measurable standards, translating complex business needs into well-scoped solutions.

Qualifications

  • 7+ years of experience developing and deploying production AI/ML systems, including cloud-native solutions on AWS or similar platforms, with a proven track record of delivering complex applications from design through production
  • Strong proficiency in Python and software engineering best practices, including source control, CI/CD, testing, documentation, and the development of scalable, maintainable software
  • Deep expertise building production AI solutions, including LLM applications, AI agents, retrieval-augmented generation (RAG), conversational AI, document intelligence, and agentic workflows, with hands‑on experience using modern AI frameworks, tooling, and protocols such as MCP and A2A
  • Experience designing, deploying, and operating end‑to‑end machine learning pipelines, including model training, deployment, monitoring, evaluation, and continuous improvement in production environments
  • Strong foundation in statistics, experimentation, data quality, and AI system evaluation, with experience developing benchmarks, defining performance metrics, analyzing errors, and optimizing systems for accuracy, reliability, scalability, cost, and latency
  • Experience leading technical design and architectural decisions, conducting code and design reviews, mentoring engineers, and driving engineering excellence across teams
  • Excellent written and verbal communication skills, with the ability to document technical solutions, collaborate with cross‑functional stakeholders, and communicate complex concepts to both technical and non‑technical audiences
  • Experience spanning multiple AI domains, including LLM systems, document intelligence, and ML platforms or infrastructure
  • Experience in financial services or FinTech, particularly within document‑heavy, regulated, or compliance‑sensitive environments is preferred
  • Contributions to open‑source projects, technical publications, conference presentations, patents, or other demonstrated thought leadership in applied AI and machine learning is preferred

Responsibilities

  • Lead the architecture and delivery of production AI systems across IDP, knowledge systems, and agentic orchestration at scale
  • Own AI projects end-to-end, from problem scoping and stakeholder alignment through solution design, implementation, deployment, monitoring, and continuous improvement
  • Drive technical design and architectural decisions for APIs, system decomposition, evaluation strategy, and infrastructure patterns
  • Architect and champion robust evaluation frameworks for AI systems, defining statistically sound metrics, curating benchmark datasets, and enforcing versioning
  • Partner with cross-functional stakeholders to identify AI opportunities, translate requirements into technical plans, and communicate tradeoffs, risks, and recommendations clearly
  • Mentor and develop engineers through code reviews, design reviews, pair problem-solving, and knowledge sharing
  • Identify systemic problems and propose solutions, proactively improving team processes, tooling, and infrastructure to reduce technical debt and increase velocity

Skills

AI systems
Python
Cloud-native
CI/CD
Architectural design
Mentoring
Cross-functional collaboration
Communication

Tools

AWS
MCP
A2A
APIs

Job description

Artificial Intelligence Engineer - Vice President

Department: Software Engineering

About the Role

iCapital is seeking a Vice President Artificial Intelligence Engineer to lead the design, development, and delivery of production-grade AI systems that drive measurable business outcomes across the firm. This individual will own key workstreams and serve as a technical leader, driving system design, mentoring engineers, partnering directly with business stakeholders, and ensuring that AI capabilities are built to production-grade standards of reliability, scalability, and measurability. The ideal candidate is a seasoned engineer with a track record of shipping complex AI systems end-to-end and someone who combines deep technical expertise with strong cross-functional partnership, architectural judgment, and able to operate as a force multiplier for the team. This role is expected to bring independent judgment on a technical approach, a bias toward delivery, and able to translate ambiguous business needs into well-scoped, well-executed solutions.

Responsibilities
  • Lead the architecture and delivery of production AI systems, including document intelligence (IDP), intelligent knowledge systems, agentic orchestration, conversational AI, and generative AI applications, to power internal and external business processes, digital experiences, and workflow automation at scale.
  • Own AI projects end-to-end, from problem scoping and stakeholder alignment through solution design, implementation, deployment, monitoring, and continuous improvement, delivering tangible business outcomes with a track record of consistent, high-quality delivery.
  • Drive technical design and architectural decisions for the team, including API design, system decomposition, evaluation strategy, and infrastructure patterns, establishing standards that raise the quality bar across the AI/ML platform.
  • Architect and champion robust evaluation frameworks for AI systems, defining statistically sound, problem-specific metrics, curating benchmark datasets, and enforcing strict versioning to ensure reproducibility and continuous improvement.
  • Partner directly with cross-functional stakeholders, including the Product, Operations, Legal, and Business teams, to identify AI opportunities, translate requirements into technical plans, and communicate tradeoffs, risks, and recommendations clearly.
  • Mentor and develop engineers on the team through code review, design review, pair problem-solving, and knowledge sharing, acting as a technical role model and raising the overall capability of the group.
  • Identify systemic problems and propose solutions, proactively improving team processes, tooling, and infrastructure to reduce technical debt and increase development velocity.
Qualifications
  • 7+ years of experience developing and deploying production AI/ML systems, including cloud-native solutions on AWS or similar platforms, with a proven track record of delivering complex applications from design through production
  • Strong proficiency in Python and software engineering best practices, including source control, CI/CD, testing, documentation, and the development of scalable, maintainable software
  • Deep expertise building production AI solutions, including LLM applications, AI agents, retrieval-augmented generation (RAG), conversational AI, document intelligence, and agentic workflows, with hands‑on experience using modern AI frameworks, tooling, and protocols such as MCP and A2A
  • Experience designing, deploying, and operating end‑to‑end machine learning pipelines, including model training, deployment, monitoring, evaluation, and continuous improvement in production environments
  • Strong foundation in statistics, experimentation, data quality, and AI system evaluation, with experience developing benchmarks, defining performance metrics, analyzing errors, and optimizing systems for accuracy, reliability, scalability, cost, and latency
  • Experience leading technical design and architectural decisions, conducting code and design reviews, mentoring engineers, and driving engineering excellence across teams
  • Excellent written and verbal communication skills, with the ability to document technical solutions, collaborate with cross‑functional stakeholders, and communicate complex concepts to both technical and non‑technical audiences
  • Experience spanning multiple AI domains, including LLM systems, document intelligence, and ML platforms or infrastructure
  • Experience in financial services or FinTech, particularly within document‑heavy, regulated, or compliance‑sensitive environments is preferred
  • Contributions to open‑source projects, technical publications, conference presentations, patents, or other demonstrated thought leadership in applied AI and machine learning is preferred
Benefits

The base salary range for this role is $170,000 to $210,000. iCapital offers a compensation package which includes salary, equity for all full‑time employees, and an annual performance bo

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