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SID Global Solutions

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Principal Agentic AI Architect

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About SIDGS:

SID Global Solutions is a premier AI-first digital transformation company, delivering intelligent full-stack solutions and services worldwide. We specialize in embedding AI across the enterprise to accelerate transformation, modernize technology, and unlock new revenue streams. Our core expertise spans AI-powered modernization, cloud and infrastructure solutions, application innovation, and advanced data analytics. As a leading Google Apigee implementation partner, we also bring you SAMi-Smart API Monetization Platform is our flagship platform for API management. With a global footprint and 1000+ professionals, SID Global Solutions is committed to building a smarter, AI-driven future through innovation and impact.

Role: Principal Agentic AI Architect | Enterprise AI Platforms, GenAI, Multi-Agent Systems & Full Stack AI Solutions

Location: Exton, PA (Onsite)
Employment Type: Full-Time
Company: SID Global Solutions

Transform the Future of Enterprise AI

SID Global Solutions is seeking a highly accomplished, hands-on technology leader to help build the next generation of Enterprise AI Platforms, Agentic AI Solutions, AI-Powered Applications, Intelligent Automation Platforms, and Industry-Specific AI Products.

We are looking for a leader with deep expertise in:

  • Agentic AI
  • Generative AI (GenAI)
  • Multi-Agent Systems
  • Large Language Models (LLMs)
  • Retrieval Augmented Generation (RAG)
  • Enterprise AI Platforms
  • AI Copilots
  • Intelligent Assistants
  • AI-Powered Workflow Automation
  • Full Stack Enterprise Application Development
  • Enterprise Architecture
  • Cloud-Native Engineering

This role combines AI Architecture, Enterprise Solution Architecture, Full Stack Engineering, Product Development, Customer Consulting, Pre-Sales Solutioning, Innovation Leadership, and AI Practice Development.

You will be responsible for building complete AI-powered business solutions that span user experience, application services, AI orchestration layers, enterprise integrations, governance frameworks, and cloud-native deployments.

This position offers a significant career growth path into AI Practice Leadership, helping shape SID Global's long-term AI platform strategy, reusable agent ecosystem, enterprise solution offerings, and AI-driven business transformation initiatives.

What You'll Do

Agentic AI Architecture & Engineering

  • Design and develop enterprise-scale Agentic AI and Generative AI platforms.
  • Architect and implement AI Agents, Multi-Agent Systems, Autonomous Agents, AI Copilots, Intelligent Assistants, and Agentic Workflow Applications.
  • Design and implement solutions using:
    • LangChain
    • LangGraph
    • AutoGen
    • CrewAI
    • Agent Development Kit (ADK)
    • Model Context Protocol (MCP)
    • AI Agent Frameworks
    • Agent Communication Protocols
    • Agent Workflow Engines
  • Design agent workflows, memory architectures, planning strategies, tool integrations, state management frameworks, and agent collaboration models.
  • Build reusable AI agents, SDKs, frameworks, accelerators, reference architectures, and platform capabilities.
  • Develop enterprise-scale Retrieval Augmented Generation (RAG) platforms leveraging semantic search, vector databases, embeddings, and enterprise knowledge systems.
  • Design enterprise search platforms, AI knowledge bases, knowledge graphs, metadata frameworks, and content intelligence architectures.
  • Build AI-powered decision support systems, intelligent workflow solutions, and business process automation capabilities.
  • Design Human-in-the-Loop AI systems, approval workflows, escalation mechanisms, and responsible AI control frameworks.
  • Lead development of intelligent automation solutions that transform business operations and enterprise workflows.

Full Stack AI-Powered Enterprise Application Development

  • Design and develop end-to-end AI-powered enterprise applications from user experience through production deployment.
  • Build enterprise software solutions including:
    • AI Workbenches
    • Enterprise Portals
    • Customer-Facing Applications
    • SaaS Platforms
    • Workflow Automation Platforms
    • Knowledge Management Systems
    • Digital Experience Platforms
    • Operational Dashboards
    • AI-Powered Business Applications
  • Architect complete application ecosystems spanning:
    • Front-End Applications
    • Backend Services
    • APIs
    • Agent Orchestration Layers
    • Enterprise Integrations
    • Security Frameworks
    • Data Platforms
    • Cloud Infrastructure
  • Develop reusable user interface components, services, APIs, integration frameworks, and platform accelerators.
  • Integrate AI capabilities into customer-facing applications, enterprise systems, and operational workflows.
  • Implement scalable, resilient, secure, and maintainable enterprise application architectures.
  • Lead application modernization initiatives that embed AI into existing enterprise systems and business processes.

Enterprise Architecture & Solution Design

  • Define enterprise reference architectures, design standards, reusable patterns, and implementation frameworks.
  • Architect end-to-end enterprise solutions spanning:
    • AI Platforms
    • Enterprise Applications
    • Integration Layers
    • Data Platforms
    • Security Architectures
    • Cloud Infrastructure
  • Design AI-powered enterprise architecture patterns for intelligent automation and digital transformation.
  • Develop enterprise integration strategies connecting AI solutions with internal and external business systems.
  • Design application modernization strategies leveraging AI, automation, and cloud-native technologies.
  • Establish architecture governance processes, technology standards, and engineering excellence practices.

AI Operations, Governance & Platform Engineering

  • Establish AgentOps, MLOps, LLMOps, DevSecOps, AI Observability, and lifecycle management frameworks.
  • Implement Responsible AI, AI Governance, AI Safety, AI Guardrails, and Enterprise Security controls.
  • Define AI reliability, monitoring, tracing, benchmarking, evaluation, and operational excellence frameworks.
  • Design and implement:
    • AI Monitoring
    • Prompt Monitoring
    • Model Monitoring
    • Distributed Tracing
    • Observability Platforms
    • Performance Analytics
  • Develop automated testing frameworks for:
    • AI Agents
    • Multi-Agent Systems
    • RAG Applications
    • Prompt Engineering
    • Retrieval Testing
    • Regression Testing
    • Guardrail Validation
    • AI Evaluation
  • Define quality metrics for:
    • Accuracy
    • Groundedness
    • Retrieval Quality
    • User Experience
    • Reliability
    • Latency
    • Business Outcomes
    • Operational Efficiency
  • Optimize AI systems for scalability, reliability, maintainability, security, and cost effectiveness.

Customer Consulting & Business Transformation

  • Lead executive workshops, AI strategy sessions, architecture reviews, design-thinking initiatives, and innovation engagements.
  • Identify enterprise AI transformation opportunities across business functions and industries.
  • Translate complex business challenges into scalable AI-powered solutions.
  • Serve as a trusted advisor to customers and executive stakeholders.
  • Support enterprise AI adoption programs, digital transformation initiatives, and intelligent automation strategies.
  • Drive business process transformation through AI-powered workflow automation and decision intelligence platforms.

Pre-Sales, Solutioning & Innovation

  • Support proposal development, RFP responses, estimates, architecture recommendations, and technical solution design.
  • Participate in proof-of-concepts, innovation programs, demonstrations, executive briefings, and customer presentations.
  • Collaborate with Sales, Alliances, Business Development, and Delivery teams to develop new AI opportunities.
  • Create reusable solution offerings, accelerators, reference architectures, and industry-specific AI frameworks.
  • Contribute to product strategy, AI platform evolution, and next-generation AI service offerings.

Leadership & AI Practice Development

  • Lead architecture reviews, design governance, and engineering excellence initiatives.
  • Mentor AI engineers, architects, developers, and technology leaders.
  • Support hiring, capability development, technical enablement, and organizational growth.
  • Establish AI engineering standards, delivery methodologies, and architectural best practices.
  • Drive innovation, research, thought leadership, and market differentiation.
  • Help shape the long-term strategy, vision, and growth roadmap for SID Global's AI Practice.

Required Qualifications

Professional Experience

  • 10+ years of software engineering experience.
  • 4+ years designing and delivering AI, Generative AI, Machine Learning, or Agentic AI solutions in production environments.
  • Proven experience architecture and delivering enterprise-scale AI-powered applications and platforms.
  • Demonstrated success leading enterprise architecture and complex technology initiatives.

Agentic AI, GenAI & LLM Engineering

Hands-on experience with:

  • LangChain
  • LangGraph
  • AutoGen
  • CrewAI
  • Agent Development Kit (ADK)
  • Model Context Protocol (MCP)
  • AI Agent Frameworks
  • Multi-Agent Architectures
  • Agent Communication Protocols
  • AI Copilot Architecture
  • Agentic Workflow Solutions

Experience delivering:

  • Retrieval Augmented Generation (RAG)
  • Enterprise Search
  • Semantic Search
  • Enterprise Knowledge Systems
  • AI Knowledge Bases
  • Intelligent Assistants
  • AI Copilots
  • LLM Applications
  • Autonomous Agent Solutions
  • Intelligent Automation Platforms

Large Language Models & AI Platforms

Experience with modern LLM ecosystems including one or more of the following:

  • OpenAI
  • Azure OpenAI
  • Gemini
  • Claude
  • Anthropic
  • Mistral
  • Llama
  • Hugging Face
  • Vertex AI
  • Azure AI Foundry
  • Amazon Bedrock

Experience with:

  • Prompt Engineering
  • Prompt Management
  • Retrieval Engineering
  • Grounded AI Systems
  • AI Evaluation
  • AI Safety
  • Responsible AI
  • AI Governance
  • LLMOps


Full Stack Application Development

Strong experience building enterprise-grade software applications and SaaS platforms.

Front-End Development

Experience with:

  • React
  • ReactJS
  • Next.js
  • Angular
  • TypeScript
  • JavaScript
  • HTML5
  • CSS3
  • Tailwind CSS
  • Material UI

Backend Development

Experience with:

  • Python
  • FastAPI
  • Flask
  • Node.js
  • Express.js
  • Java
  • Spring Boot
  • .NET Core
  • REST APIs
  • GraphQL

Enterprise Application Engineering

Experience building:

  • Enterprise Applications
  • SaaS Platforms
  • Workflow Automation Solutions
  • Business Process Automation Platforms
  • Enterprise Portals
  • Microservices Architectures
  • Event-Driven Architectures
  • Distributed Systems
  • Integration Platforms

Experience implementing:

  • Authentication
  • Authorization
  • Single Sign-On (SSO)
  • Role-Based Access Control (RBAC)
  • API Security
  • Enterprise Identity Management

Data, Knowledge & Search Architecture

Experience with:

Vector Databases

  • Pinecone
  • Weaviate
  • Chroma
  • FAISS
  • Azure AI Search

Enterprise Search & Knowledge Systems

  • Enterprise Search
  • Semantic Search
  • Knowledge Graphs
  • Enterprise Knowledge Management
  • Metadata Management
  • Information Retrieval
  • Content Intelligence

Data Platforms

  • BigQuery
  • Apache Spark
  • Kafka
  • Airflow
  • Data Pipelines
  • ETL / ELT
  • Data Lakes
  • Data Warehousing

Databases

  • PostgreSQL
  • MySQL
  • SQL Server
  • MongoDB
  • Redis
  • Cosmos DB

Cloud & Platform Engineering

Experience deploying enterprise AI and business applications on at least one major public cloud platform:

  • Microsoft Azure
  • Amazon Web Services (AWS)
  • Google Cloud Platform (GCP)

Experience with:

  • Docker
  • Kubernetes
  • CI/CD
  • Infrastructure Automation
  • Monitoring Platforms
  • Observability Platforms
  • Platform Engineering

Enterprise Architecture & Operations

Strong understanding of:

  • Enterprise Architecture
  • Solution Architecture
  • Cloud Architecture
  • AI Governance
  • Responsible AI
  • AgentOps
  • MLOps
  • LLMOps
  • DevSecOps
  • Application Security
  • Reliability Engineering
  • Scalability Engineering
  • Performance Engineering
  • Enterprise Integration Patterns

Preferred Qualifications

Google Cloud Platform (Highly Preferred)

Experience with:

  • Vertex AI
  • Gemini
  • Agent Development Kit (ADK)
  • Cloud Run
  • BigQuery
  • Google Kubernetes Engine (GKE)
  • Cloud Functions
  • Pub/Sub
  • Apigee
  • Cloud-Native AI Services

Azure Experience

  • Azure AI Foundry
  • Azure OpenAI
  • Azure AI Search
  • Azure Functions
  • Azure Kubernetes Service (AKS)

AWS Experience

  • Amazon Bedrock
  • ECS
  • EKS
  • Lambda

Industry Experience

Experience delivering AI-powered solutions in:

  • Banking
  • Financial Services
  • Insurance
  • Healthcare
  • Public Sector
  • Government
  • Contact Centers
  • Customer Service
  • Human Resources
  • Talent Acquisition
  • Supply Chain
  • Enterprise Operations

Advanced AI & Product Engineering

Experience with:

  • AI Evaluation Frameworks
  • AI Testing Methodologies
  • Machine Learning Engineering
  • Predictive Analytics
  • Recommendation Systems
  • Classification Models
  • AI Beyond LLMs

Experience building:

  • Enterprise AI Products
  • Customer-Facing Platforms
  • Digital Products
  • Agent Workbenches
  • Knowledge Portals
  • Workflow Automation Solutions
  • AI-Powered SaaS Platforms

What Success Looks Like

The successful candidate will:

✅ Architect enterprise-scale Agentic AI platforms and Multi-Agent Systems

✅ Deliver AI-powered enterprise applications from user experience through production operations

✅ Build reusable AI agents, frameworks, accelerators, and platform capabilities

✅ Establish engineering, governance, observability, and operational excellence standards

✅

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