VP, Global Engineering and Automation Enablement

Resolution Technologies, Inc.

Atlanta (GA)

On-site

USD 250,000 - 350,000

Full time

14 days+

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Job summary

Resolution Technologies, Inc. seeks a VP-level leader to own the architecture, scalability, and intelligent automation of our FinTech platforms. You will drive cloud-native, distributed system design with AI-powered automation to improve reliability and operational scale.

You will shape platform strategy, governance, and multi-year roadmaps, guiding teams through service-oriented transformations and high-velocity product delivery while ensuring performance and resiliency at scale.

Qualifications

  • 10+ years designing and operating large-scale distributed systems.
  • 5+ years in senior technical leadership roles (Director, Principal, VP, or equivalent).
  • Deep expertise in platform architecture, cloud-native design, and system scalability.
  • Strong hands-on experience with AWS, Azure, or GCP.
  • Proven experience with microservices, event-driven architectures, and distributed data systems.
  • Solid background in Infrastructure as Code and automation-first platform design.
  • Experience applying AI/ML concepts to operational or platform use cases.

Responsibilities

  • Own the end-to-end platform architecture supporting core FinTech products and transaction flows.
  • Define architectural standards for scalability, performance, resiliency, and system composability.
  • Lead evolution from monolithic systems toward distributed, service-oriented platforms.
  • Establish ownership models and architectural governance; define a multi-year platform roadmap.
  • Design platforms for high transaction volumes, burst traffic, and throughput; guide scaling across layers.

Skills

Platform architecture
Distributed systems
Cloud-native
AI-driven automation
Senior leadership

Tools

Terraform

Job description

VP, Global Engineering and Automation Enablement Role Overview

We are seeking a senior Technology Leader to own the architecture, scalability, and intelligent automation of our core FinTech platforms. This role is responsible for designing large-scale, cloud-native, distributed systems while leveraging AI-driven automation to improve platform efficiency, reliability, and operational scale.

The ideal candidate combines deep expertise in platform architecture and distributed systems with a strong point of view on using AI to automate infrastructure operations, optimize performance, and enable predictive, self-healing platforms. This is a highly technical leadership role with material influence over how the platform scales as the business grows.

VP, Global Engineering and Automation Enablement Key Responsibilities
Platform Architecture & Technical Strategy
  • Own the end-to-end platform architecture supporting core FinTech products and transaction flows
  • Define architectural standards for scalability, performance, resiliency, and system composability
  • Lead evolution from tightly coupled or monolithic systems toward distributed, service-oriented platforms
  • Establish clear system boundaries, ownership models, and architectural governance
  • Define and execute a multi-year platform roadmap aligned with growth, transaction scale, and product velocity
Scalability & Distributed System
  • Design platforms capable of handling high transaction volumes, burst traffic, and sustained throughput
  • Guide horizontal scaling strategies across compute, storage, data, and messaging layers
  • Lead architectural decisions around sharding, partitioning, caching, asynchronous processing, and concurrency
  • Continuously improve latency, throughput, and resource efficiency across the platform
  • Enable multi-region and multi-environment scalability where required
  • Architect cloud platforms (AWS, Azure, or GCP) optimized for scale, availability, and operational efficiency
  • Define reference architectures for containerized workloads, microservices, and distributed runtimes
  • Lead Kubernetes and container platform adoption and standardization
  • Mature Infrastructure as Code (Terraform, CloudFormation, etc.) for consistent, scalable environments
  • Own capacity modeling, growth forecasting, and infrastructure lifecycle planning
  • Apply AI and machine learning techniques to automate platform operations and decision-making
Use AI for:
  • Capacity forecasting and demand prediction
  • Anomaly detection in platform performance and system behavior
  • Automated root-cause analysis and incident correlation
  • Predictive scaling and infrastructure optimization
  • Drive adoption of self-healing platform patterns where systems can respond automatically to failure or degradation
  • Enable data pipelines, feature stores, and runtime environments required to support AI-enabled platform services
  • Partner with data and engineering teams to productionize AI capabilities within core platform workflows
Platform Engineering & Developer Enablement
  • Build shared platform capabilities that abstract complexity and enable product teams to scale independently
  • Provide self-service infrastructure, golden paths, and opinionated platform tooling
  • Standardize CI/CD, runtime environments, observability, and deployment patterns
  • Reduce friction and cognitive load for application teams through strong platform design
  • Measure and improve developer experience as a platform outcome
Reliability, Performance & Intelligent Operations
  • Lead SRE practices focused on scalability, automation, and operational maturity
  • Define and track SLIs/SLOs centered on throughput, latency, availability, and platform health
  • Establish advanced observability (metrics, tracing, logging) as inputs to AI-driven insights
  • Lead analysis of scaling failures, performance bottlenecks, and systemic inefficiencies
  • Drive continuous improvement toward predictable, automated, and resilient operations
Required Qualifications
  • 10+ years of experience designing and operating large-scale distributed systems
  • 5+ years in senior technical leadership roles (Director, Principal, VP, or equivalent)
  • Deep expertise in platform architecture, cloud-native design, and system scalability
  • Strong hands-on experience with AWS, Azure, or GCP
  • Proven experience with microservices, event-driven architectures, and distributed data systems
  • Solid background in Infrastructure as Code and automation-first platform design
  • Experience applying AI/ML concepts to operational or platform use cases
Preferred Qualifications
  • Experience with high-volume transaction processing or real-time systems
  • Strong Kubernetes and container platform experience
  • Experience with event streaming platforms (Kafka or equivalent)
  • Background modernizing legacy platforms at scale
  • Experience with AI-assisted operations, AIOps, or intelligent monitoring platforms
  • Systems-level architectural thinking with a strong scalability mindset
  • Ability to blend platform engineering and AI automation into practical solutions
  • Technical credibility with senior engineers, architects, and leadership
  • Pragmatic decision-maker who balances ideal architecture with real-world constraints
  • Strong communicator who can translate technical strategy into business impact
30-60-90 Day Success Plan
First 30 Days – Understand & Assess
  • Develop deep understanding of current platform architecture and scaling limits
  • Review system topology, transaction paths, and performance characteristics
  • Identify opportunities for automation, AI-driven optimization, and architectural simplification
  • Build strong relationships across engineering, data, and product leadership
Days 31–60 – Architect & Automate
  • Define target-state platform architecture with explicit scalability patterns
  • Prioritize architectural improvements with the highest scale and automation leverage
  • Introduce AI-enabled insights into observability, capacity, or incident analysis
  • Establish platform standards, reference architectures, and design principles
  • Deliver measurable improvements in throughput, latency, and platform stability
  • Advance automation toward self-service, self-scaling, and self-healing capabilities
  • Roll out platform-level AI automation for operations and performance optimization
  • Finalize a multi-year platform and AI-automation roadmap
  • Establish a culture of building intelligent systems designed to scale by default
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