Senior Cloud Consultant AI & Cloud-Native Solutions

Talent Software Services, Inc.

  • Indianapolis, IN
  • 10 days ago
  • $56.81 Per Hour

Highlights

Work with business stakeholders, product teams, architects, and developers to deliver scalable and secure AI-driven solutions. Lead design and implementation of cloud-native applications and enterprise solutions on AWS, Azure, or other cloud platforms.

Numbers & Facts

LocationIndianapolis, IN
Salary$56.81 Per Hour

Description

  • Job Title: Senior Cloud Consultant – AI & Cloud-Native Solutions
  • Location: Indianapolis, IN
  • Duration: 6 months
  • GBaMS ReqID: 10937342
  • Experience Required: 8+ years in cloud consulting, architecture, or cloud engineering
  • AI Experience: 3+ years delivering AI, ML, or Generative AI solutions

Role Overview

  • Senior Cloud Consultant specializing in Artificial Intelligence and Cloud-Native Solutions.
  • Serve as the AI and Cloud champion within the consulting team.
  • Lead strategy, architecture, implementation, and optimization of intelligent cloud applications.
  • Expertise in:
    • Generative AI
    • Machine Learning
    • Large Language Models (LLMs)
    • Cloud-native services
  • Deep expertise in AWS, with experience across Azure and other cloud platforms.
  • Work with business stakeholders, product teams, architects, and developers to deliver scalable and secure AI-driven solutions.
  • Provide technical leadership, cloud architecture, AI solutioning, governance, and hands-on implementation.

Cloud Architecture & Solution Design

  • Lead design and implementation of cloud-native applications and enterprise solutions on AWS, Azure, or other cloud platforms.
  • Design scalable, secure, resilient, and cost-optimized cloud architectures.
  • Establish cloud design patterns, best practices, and governance standards.
  • Evaluate and recommend cloud services, frameworks, and technologies.
  • Collaborate with development teams for successful solution delivery and operational excellence.
  • Conduct architecture reviews and provide technical leadership across multiple projects.

AI Enablement & Innovation

  • Identify opportunities for:
    • Artificial Intelligence
    • Generative AI
    • Machine Learning
    • Intelligent automation
  • Design and implement AI solutions using:
    • Amazon Bedrock
    • Amazon SageMaker
    • AWS AI Services
    • Azure OpenAI
    • Open-source LLM frameworks
  • Develop AI use cases, proof-of-concepts, and production-ready solutions.
  • Assess AI feasibility, business value, and implementation strategies.
  • Define solutions for:
    • Retrieval-Augmented Generation (RAG)
    • AI Agents
    • Model orchestration
    • Enterprise search
  • Promote responsible AI adoption, governance, security, compliance, and ethical AI practices.

Cloud Consulting & Stakeholder Engagement

  • Engage business and technical stakeholders to understand strategic objectives.
  • Translate business objectives into cloud and AI roadmaps.
  • Facilitate:
    • Workshops
    • Architecture reviews
    • Technical discovery sessions
  • Serve as a trusted advisor for cloud modernization and AI transformation.
  • Create business cases and value realization strategies for AI investments.
  • Recommend cloud migration, optimization, and modernization opportunities.

Platform Engineering & Automation

  • Design and implement Infrastructure as Code (IaC) using:
    • Terraform
    • AWS CDK
    • CloudFormation
    • Similar tools
  • Build automated deployment pipelines and DevOps workflows.
  • Implement CI/CD pipelines across cloud environments.
  • Automate:
    • Infrastructure provisioning
    • Monitoring
    • Security
    • Compliance controls
  • Support containerized and serverless workloads using:
    • Kubernetes
    • ECS
    • EKS
    • Lambda
    • Azure Container Apps

Security, Governance & Compliance

  • Ensure cloud and AI solutions comply with organizational security policies and regulatory requirements.
  • Implement:
    • Identity and Access Management
    • Encryption
    • Observability
    • Security monitoring
  • Define AI governance frameworks.
  • Establish model lifecycle management and AI risk management practices.
  • Conduct architecture risk assessments and remediation planning.

Operational Excellence

  • Monitor cloud solution:
    • Performance
    • Reliability
    • Cost efficiency
  • Establish observability standards for monitoring and logging.
  • Support production incidents and lead root cause analysis (RCA).
  • Drive continuous improvement focused on:
    • Scalability
    • Reliability
    • Operational efficiency

Required Cloud Skills

  • Deep expertise in AWS, including:
    • EC2
    • S3
    • EKS
    • ECS
    • Lambda
    • RDS
    • DynamoDB
    • API Gateway
    • VPC
    • IAM
    • CloudWatch
  • Experience with Microsoft Azure.
  • Enterprise cloud architecture and migration experience.

Required AI / ML Skills

  • Experience implementing enterprise AI and Generative AI solutions.
  • Experience/knowledge of:
    • Amazon Bedrock
    • Amazon SageMaker
    • Azure OpenAI
    • OpenAI APIs
    • LangChain
    • LlamaIndex
    • Vector Databases
    • Semantic Search
    • RAG Architectures
    • AI Agents
  • Understanding of:
    • Prompt engineering
    • Model evaluation
    • AI lifecycle management
  • Familiarity with foundation models such as:
    • GPT
    • Claude
    • Gemini
    • Llama

Application Development Skills

  • Experience supporting cloud-based applications and APIs.
  • Proficiency in Python or Node.js.
  • Experience building and integrating REST APIs and microservices.
  • Understanding of:
    • Event-driven architectures
    • Serverless architectures

DevOps & Automation Skills

  • Terraform
  • CloudFormation
  • AWS CDK
  • GitHub Actions
  • Jenkins
  • Azure DevOps
  • CI/CD
  • Docker
  • Kubernetes
  • Grafana
  • Datadog
  • OpenTelemetry
  • CloudWatch

Qualifications

  • Bachelor's degree in:
    • Computer Science
    • Engineering
    • Information Technology
    • Related field
  • 8+ years of cloud consulting, architecture, or engineering experience.
  • 3+ years of AI, Machine Learning, or Generative AI delivery experience.
  • Proven experience designing enterprise-scale cloud solutions.
  • Strong stakeholder management and consulting skills.
  • Excellent communication, presentation, and problem-solving skills.
  • Experience leading cross-functional technical initiatives.
  • Experience mentoring engineering teams.

Preferred Qualifications

  • AWS Solutions Architect – Professional certification.
  • AWS Machine Learning – Specialty certification.
  • Microsoft Azure AI Engineer certification.
  • Experience building AI-enabled SaaS platforms and enterprise applications.
  • Experience with Agentic AI frameworks and autonomous workflow orchestration.
  • Knowledge of:
    • Data governance
    • Model governance
    • AI compliance frameworks

Key Success Measures

  • Successful delivery of scalable, secure, AI-enabled cloud solutions.
  • Increased adoption of AI across business applications.
  • Improved operational efficiency through automation and intelligent workflows.
  • Measurable business outcomes from AI and cloud transformation.
  • High stakeholder satisfaction and trusted-advisor relationships.
  • Establishment of reusable cloud and AI architecture standards.

Key Resume Keywords

  • Senior Cloud Consultant
  • Cloud Architect
  • AWS
  • Azure
  • Cloud-Native
  • Generative AI
  • Artificial Intelligence
  • Machine Learning
  • LLM
  • Amazon Bedrock
  • SageMaker
  • Azure OpenAI
  • OpenAI API
  • LangChain
  • LlamaIndex
  • RAG
  • Retrieval-Augmented Generation
  • AI Agents
  • Agentic AI
  • Vector Database
  • Semantic Search
  • Prompt Engineering
  • Python
  • Node.js
  • REST API
  • Microservices
  • Terraform
  • AWS CDK
  • CloudFormation
  • Kubernetes
  • Docker
  • EKS
  • ECS
  • Lambda
  • CI/CD
  • DevOps
  • CloudWatch
  • Grafana
  • Datadog
  • OpenTelemetry
  • AI Governance
  • Cloud Security
  • Cloud Migration
  • Enterprise Architecture

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