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Nuvei

SVP, Head of Agentic Engineering and Acceleration

RemoteUnited States only
Published
Role
Engineering Management
Experience
C-Level
Salary not disclosed
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Open to US only. Set where you work from to check your eligibility.

No BS summary

Executive engineering leader for global agentic software engineering transformation. Needs deep software engineering, generative AI/agentic systems, platforms, security, and enterprise-scale adoption experience. English written and spoken is required; fintech/payments or regulated-environment experience is strongly preferred.

Core skills

MCPAgentic AIGenerative AI

Required skills

CI/CDSource-code managementObservabilityOpenAI CodexAnthropic Claude CodeGitHub CopilotAPIs

Required languages

English written and spoken; used most of the time as work colleagues, clients, and strategic suppliers are geographically dispersed.

What you'll do

  • Define and execute the multiyear strategy and roadmap for agentic product and engineering across the company's global technology organization.
  • Establish adoption objectives by engineering function, product domain, geography, technology stack, and maturity, moving teams from controlled experimentation to governed production use and agentic-first practices.
  • Partner with global product and engineering leaders to embed agentic capabilities into delivery models, processes, organizational structures, and accountabilities.
  • Identify and remove technical, organizational, cultural, talent, process, and governance barriers to adoption.
  • Establish executive governance and reporting covering adoption, investment, delivery outcomes, risk, cost, and realized business value.
  • Build and lead an initial team of approximately 10 to 15 engineers, architects, platform specialists, and agentic-development leaders, scaling it into a larger global engineering organization as value and demand grow.
  • Operate the team through an agentic-native model in which approved agents and workflows perform software design, development, testing, documentation, deployment, monitoring, maintenance, and modernization.
  • Ensure engineers primarily direct, orchestrate, supervise, validate, and optimize agents rather than rely on conventional manual software-development practices.
  • Deliver high-priority enterprise software, reusable components, platform capabilities, and modernization initiatives through this model.
  • Establish engagement, prioritization, delivery, talent, and leadership models, and codify successful practices into reusable standards, playbooks, architectures, agents, skills, and accelerators.
  • Own the design, implementation, governance, and continuous evolution of the company-wide ADLC.
  • Embed agentic capabilities throughout requirements, architecture, coding, review, testing, security validation, documentation, release, deployment, production operations, incident response, and modernization.
  • Define reusable patterns, control gates, certification, production-readiness standards, and risk-based requirements for human supervision, validation, approval, and intervention.
  • Integrate the ADLC with enterprise source-code management, CI/CD, testing, security, observability, change-management, and production-operations platforms.
  • Establish versioning, auditability, rollback, monitoring, incident-management, and lifecycle controls without compromising quality, resilience, maintainability, security, or regulatory compliance.
  • Define the requirements and target architecture for enterprise-grade agentic development and execution platforms, partnering with Platform Engineering, Enterprise Architecture, Security, and engineering leaders on implementation.
  • Lead adoption and integration of approved technologies such as OpenAI Codex, Anthropic Claude Code, GitHub Copilot, and comparable capabilities.
  • Provide secure, reliable, self-service access to approved models, tools, execution environments, enterprise data, repositories, APIs, golden paths, and reusable platform services.
  • Define requirements for model routing, context and memory, identity, secrets, privileged access, auditability, observability, availability, scalability, and disaster recovery; prevent fragmented tooling and ungoverned deployments.
  • Lead development of reusable enterprise agents, specialized skills, workflows, orchestration capabilities, and Model Context Protocol (MCP) services.
  • Establish an enterprise registry and standards for approved agents, skills, prompts, tools, MCP servers, context, memory, delegation, testing, versioning, ownership, and retirement.
  • Develop secure MCP servers and comparable integrations connecting models with enterprise applications, engineering platforms, data environments, operational tools, and core fintech APIs.
  • Establish certification, access, and reuse requirements that promote interoperability while preventing duplication, inconsistent practices, and uncontrolled agent proliferation.
  • Establish an acceleration capability that works directly with product and engineering organizations to identify and implement high-value agentic use cases.
  • Deploy embedded engineers into priority domains and lead lighthouse implementations that demonstrate value, transfer knowledge, and create sustainable local capability.
  • Develop training, technical academies, certifications, communities of practice, engineering forums, and a global network of agentic engineering champions.
  • Partner with engineering management to redefine roles, skills, team structures, workflows, career paths, and capacity assumptions as adoption matures.
  • Create implementation playbooks and change programs that support responsible experimentation, build confidence, address resistance, and sustain adoption across cultures and geographies.
  • Establish governance for ownership, approval, production access, operation, monitoring, and retirement of agents and agentic engineering capabilities.
  • Implement controls addressing data leakage, hallucination, prompt injection, insecure code generation, model misuse, unauthorized tool execution, intellectual-property exposure, and excessive autonomy.
  • Ensure production agents and agent-generated software have accountable owners, appropriate testing, audit trails, monitoring, rollback capabilities, and incident-management processes.
  • Partner with Information Security, Legal, Privacy, Risk, Compliance, and Internal Audit to meet regulatory and responsible-AI requirements, including clear exception, escalation, remediation, and risk-acceptance processes.
  • Define baselines, targets, dashboards, and executive reporting for productivity, cycle time, release frequency, quality, defect leakage, change-failure rate, reliability, modernization velocity, and developer experience.
  • Measure adoption and performance by team, geography, domain, workflow, and maturity, and compare the agentic-native organization with conventional delivery approaches.
  • Establish transparency and controls for token, model, licensing, infrastructure, and platform costs; optimize routing, context, caching, prompts, and platform utilization.
  • Remediate, consolidate, or retire underperforming and high-risk use cases, translating productivity gains into greater capacity, faster delivery, improved outcomes, and reduced cost.

What they require

  • Significant executive experience leading global software engineering, AI engineering, developer platform, engineering transformation, or comparable technology organizations.
  • Demonstrated success building and leading high-performing teams across countries, cultures, time zones, and technology environments.
  • Proven experience driving enterprise-scale adoption of new engineering technologies, development methods, operating models, and organizational practices.
  • Demonstrated experience designing, building, or scaling enterprise generative-AI or agentic-AI platforms and production capabilities.
  • Deep understanding of modern software engineering, cloud platforms, developer experience, CI/CD, automated testing, source-code management, observability, security, and production operations.
  • Strong knowledge of large language models, agent orchestration, tool calling, retrieval-augmented generation, context and memory management, model routing, human oversight, MCP servers, model gateways, and enterprise APIs.
  • Practical experience with agentic development technologies such as OpenAI Codex, Anthropic Claude Code, GitHub Copilot, or comparable platforms.
  • Strong understanding of AI security, data protection, identity and access management, secrets management, model governance, intellectual-property protection, and responsible-AI controls.
  • Experience managing major technology investments, vendors, and global transformation programs; payments, fintech, financial services, or another highly regulated environment is strongly preferred.
  • Strong executive communication and influencing skills.
  • Bachelor's degree in computer science, engineering, information systems, or a related discipline, or equivalent experience; an advanced degree is preferred.
  • A transformational global leader who converts an ambitious vision into disciplined execution and measurable outcomes.
  • Technically credible from executive strategy through detailed engineering, architecture, platform, security, and control decisions.
  • An organizational builder who attracts specialized talent, develops leaders, and creates clarity and accountability across distributed teams.
  • Pragmatic, data-driven, and commercially minded, balancing velocity with quality, security, resilience, compliance, and cost.
  • An influential change leader who challenges traditional practices, builds confidence, manages resistance, and sustains adoption across cultures and geographies.

Benefits

  • Competitive holiday allowance
  • 401K Matching program
  • Group Insurance Benefits
  • Flexible working model
  • Employee Assistance Program

Nuvei is the global fintech building the infrastructure for every payment, everywhere. Its modular, flexible, and scalable technology enables leading companies to accept next-generation payments, offer all payout options, and benefit from card issuing, banking, risk, and fraud management services.

🇺🇸 United StatesFintechEnterprisesimplex.com
Salary not disclosed