AI Solutions, Architecture and Tooling

SMBC

Charlotte (NC)

Hybrid

USD 180,000 - 300,000

Full time

7 days ago
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Job summary

SMBC Group in Charlotte, NC, seeks a Director of AI Solutions, Architecture and Tooling within the Platform Engineering team to define and lead enterprise AI/GenAI delivery on Databricks and Azure.

You will own reference architectures, toolchains, and reusable assets, partnering with cybersecurity, risk, data governance, and business leaders to accelerate adoption with governance and cost discipline in a regulated financial environment.

Qualifications

  • 8+ years of hands-on experience in AI/ML engineering, software platform engineering, or enterprise application architecture.

Responsibilities

  • Define the enterprise AI solution architecture strategy and reference architectures.
  • Own the AI developer toolchain and golden paths for reusable SDKs and templates.
  • Lead solution architecture for retrieval-augmented generation and agentic workflows.
  • Evaluate AI models, frameworks, vendors, and tools and make adoption recommendations.

Skills

Advanced Python
AI/GenAI frameworks
Enterprise architecture

Education

Bachelor's degree in Computer Science, Machine Learning, Data Science, Engineering, or a related field

Tools

Databricks
Azure

Job description

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SMBC Group is a top-tier global financial group. Headquartered in Tokyo and with a 400-year history, SMBC Group offers a diverse range of financial services, including banking, leasing, securities, credit cards, and consumer finance. The Group has more than 130 offices and 80,000 employees worldwide in nearly 40 countries. Sumitomo Mitsui Financial Group, Inc. (SMFG) is the holding company of SMBC Group, which is one of the three largest banking groups in Japan. SMFG’s shares trade on the Tokyo, Nagoya, and New York (NYSE: SMFG) stock exchanges.

In the Americas, SMBC Group has a presence in the US, Canada, Mexico, Brazil, Chile, Colombia, and Peru. Backed by the capital strength of SMBC Group and the value of its relationships in Asia, the Group offers a range of commercial and investment banking services to its corporate, institutional, and municipal clients. It connects a diverse client base to local markets and the organization’s extensive global network. The Group’s operating companies in the Americas include Sumitomo Mitsui Banking Corp. (SMBC), SMBC Nikko Securities America, Inc., SMBC Capital Markets, Inc., SMBC MANUBANK, JRI America, Inc., SMBC Leasing and Finance, Inc., Banco Sumitomo Mitsui Brasileiro S.A., and Sumitomo Mitsui Finance and Leasing Co., Ltd.

Role Description

As the Director of AI Solutions, Architecture and Tooling in the Platform Engineering team, you will define and lead the enterprise approach for designing, building, and scaling AI/GenAI solutions. You will own reference architectures, engineering patterns, and the approved developer toolchain that enable teams to deliver secure, reusable, production-grade AI capabilities on Databricks and Azure. You will partner with architecture, technology, data, cybersecurity, risk, and business leaders to translate business needs into practical solution designs and platform roadmaps.

This is a hands-on technical leadership role that combines architecture ownership with engineering enablement. You will establish the standards and reusable assets that guide AI solution delivery, lead complex design decisions, evaluate the evolving tool ecosystem, and build a team that accelerates adoption while maintaining reliability, governance, and cost discipline in a regulated financial environment.

Role Objectives
  • Define the enterprise AI solution architecture strategy, reference architectures, engineering standards, and guardrails for secure and scalable AI/GenAI delivery on Databricks and Azure Cloud Services.
  • Own the AI developer toolchain and golden paths, including reusable SDKs, templates, development environments, and patterns that improve engineering speed, consistency, and compliance.
  • Lead solution architecture for retrieval-augmented generation, agentic workflows, document intelligence, model integration, multimodal AI, and other enterprise use cases.
  • Define and guide reusable platform services and integration patterns for identity, data access, model access, observability, prompt management, and downstream application consumption.
  • Establish and lead architecture reviews and the enterprise path-to-production, partnering with cybersecurity, risk, data governance, and responsible-AI stakeholders to embed required controls.
  • Evaluate AI models, frameworks, vendors, and engineering tools through structured proofs of technology, and make clear recommendations for adoption, standardization, or retirement.
  • Drive engineering quality through standards for APIs, testing, CI/CD, infrastructure-as-code, performance, resilience, observability, and cost-efficient solution design.
  • Partner with AI Capability Development and AI-Ops leaders to move reference designs into reusable capabilities and reliable production services with clear ownership and operating models.
  • Build, mentor, and lead a team of architects and senior engineers while influencing engineering practices and technical decisions across the broader organization.
Qualifications and Skills
  • Bachelor's degree in Computer Science, Machine Learning, Data Science, Engineering, or a related field; an advanced degree is a plus.
  • 8+ years of hands-on experience in AI/ML engineering, software platform engineering, or enterprise application architecture, including 3+ years in a technical leadership, architect, or engineering lead capacity.
  • Demonstrated experience defining enterprise-scale AI/GenAI architectures, reference patterns, technical standards, and roadmaps across multiple teams or business domains.
  • Advanced Python skills and deep experience with AI/GenAI frameworks and services such as Databricks Vector Search, Azure AI Search,
  • Deep knowledge of retrieval-augmented generation, agentic architectures, prompt engineering, embedding models, vector databases, model integration, and evaluation patterns.
  • Strong hands-on expertise with Databricks, Azure cloud services, distributed data platforms, and enterprise integration patterns.
  • Demonstrated experience developing RESTful and event-driven services, microservices, containerized applications, CI/CD systems, and infrastructure-as-code.
  • Experience building developer platforms, approved toolchains, golden paths, or reusable engineering frameworks that improve adoption across distributed teams.
  • Familiarity with AI governance, responsible AI, cybersecurity, privacy, and control requirements in a regulated environment.
  • Proven ability to build and lead technical teams, communicate with executives, and influence senior technical and non-technical stakeholders across organizational boundaries.

SMBC’s employees participate in a Hybrid workforce model that provides employees with an opportunity to work from home, as well as, from an SMBC office. SMBC requires that employees live within a reasonable commuting distance of their office location. Prospective candidates will learn more about their specific hybrid work schedule during their interview process. Hybrid work may not be permitted for certain roles, including, for example, certain FINRA-registered roles for which in-office attendance for the entire workweek is required.

SMBC provides reasonable accommodations during candidacy for applicants with disabilities consistent with applicable federal, state, and local law. If you need a reasonable accommodation during the application process, please let us know at accommodations@smbcgroup.com.

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