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AI & Multi Cloud Architect

ShaarproWest Palm Beach, FL🇺🇸United StatesPosted 10 Sept 2026

Why This Role Stands Out

This AI & Multi Cloud Architect role offers significant opportunities to shape innovative solutions and drive technological advancement within a reputable organization. You'll thrive here if you have a passion for building cutting-edge AI integrations and defining architectural standards, making this an exciting next step in your career. Apply today to contribute to impactful projects and expand your expertise in a dynamic environment.

Quick Overview

Seniority
Mid Senior
Work mode
On Site
Location
West Palm Beach, FL, United States
Posted
22 hours ago
SQLAWSETLMLOpsData PipelineGenerative AIGoogle CloudJiraKubernetesPythonTerraform

Job Description

AI & Multi Cloud Architect

Tech Mahindra / NextEra Energy

Juno Beach, FL – Onsite

 

JD:

Architecture

Defines standards, patterns, governance

Delivery

Builds POCs, pipelines, and AI integrations

Model

Shared service / enterprise enablement

Authority

Influences + demonstrates (not just advises)

Cloud

Multi-cloud, cloud-agnostic mindset


Key Responsibilities

1. Multi-Cloud Architecture & Governance

  • Define and implement cloud-agnostic architecture patterns across AWS and Google Cloud Platform
  • Standardize Google Cloud Platform governance aligned to AWS controls
  • Establish reusable reference architectures for data, AI, and infrastructure
  • Promote abstraction via:
    • Containers (Kubernetes)
    • APIs
    • Infrastructure as Code (Terraform)

2. Hands-On Enablement (POCs & Pipeline Delivery)

  • Build proof-of-concept solutions to validate architecture patterns
  • Develop and optimize data pipelines and integrations across systems (ServiceNow, Apptio, Jira)
  • Implement AI-enabled workflows (model integration, automation)
  • Provide hands-on support to delivery teams to accelerate adoption
  • Translate architecture into working, scalable solutions

3. AI Integration & MLOps Enablement

  • Design and implement AI-ready pipelines (structured + unstructured data)
  • Support:
    • Model integration into enterprise workflows
    • MLOps lifecycle enablement (CI/CD, monitoring, governance)
    • AI tool/vendor evaluation
  • Mature organization from:
    • POCs → Embedded AI → Governed enterprise AI

4. Data Architecture & Integration (CMDB/APM-Aligned)

  • Architect data flows integrating:
    • ServiceNow (CMDB/APM)
    • Apptio (cost transparency)
    • Jira (delivery data)
  • Address key challenges:
    • Data latency
    • Data duplication
    • Cost visibility gaps
  • Enforce system-of-record and data ownership principles

5. Governance & FinOps (Advisory + Enablement)

  • Define standards for:
    • Cloud cost optimization (FinOps)
    • AI governance and lifecycle management
    • Data quality and pipeline SLAs
  • Support KPI transparency:
    • Cloud cost per application
    • Data pipeline reliability
    • AI ROI
  • Guide teams while enabling them through working solutions

6. Platform Strategy & Shared Services Leadership

  • Act as a central architecture leader and enabler
  • Support teams through:
    • Architecture reviews
    • POC delivery
    • Design guidance
  • Build reusable enterprise assets:
    • Patterns
    • Templates
    • Integration frameworks

Required Experience

  • 7+ years in cloud architecture, data engineering, or infrastructure
  • Proven experience in multi-cloud environments (AWS + Google Cloud Platform)
  • Demonstrated ability to:
    • Design architecture and deliver working solutions
    • Build data pipelines and integrations
  • Strong experience with:
    • Python, SQL
    • ETL/ELT pipelines
    • Infrastructure as Code (Terraform preferred)
    • Containers (Kubernetes)

AI & Modern Architecture Requirements

  • Hands-on experience with:
    • AI/ML integration into enterprise pipelines
    • MLOps or AI lifecycle tooling
  • Experience evaluating and implementing:
    • AI platforms
    • Automation tooling

Preferred Experience

  • ServiceNow CMDB/APM integration
  • Apptio (cost allocation / FinOps)
  • Experience solving:
    • Cross-system duplication
    • Data lineage challenges
  • Exposure to Generative AI integration

 

Success Metrics (Aligned to Your KPIs)

  • Reduction in cloud cost per application
  • Improvement in pipeline SLAs
  • Reduction in duplicate data/integrations
  • Increase in production AI-enabled workflows
  • Adoption of multi-cloud architecture standards
  • Number of successful POCs transitioned to production

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