AI Architect Remote Role

Veridian Tech Solutions, Inc.

Dallas (TX)

On-site

USD 180,000 - 240,000

Full time

5 days ago
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Job summary

Veridian Tech Solutions, Inc. is seeking an AI Solutions Architect to lead the strategy, architecture, and design of complex enterprise AI and Generative AI solutions.

You will partner with leadership to define the AI vision and work with engineering teams on scalable architecture, agentic AI, and multi-agent workflows. The role requires deep expertise in GCP, ML, RAG, knowledge graphs, and MCP integrations, with hands-on Python development and a track record of delivering enterprise-grade AI

Qualifications

  • Must have extensive experience in AI solutions architecture for enterprise-scale systems.
  • Strong hands-on and strategic architecture skills across AI platforms and cloud.
  • Deep expertise in agentic and multi-agent AI, including A2A communication and orchestration.
  • Proficient in Python development and building scalable AI/ML solutions on GCP.

Responsibilities

  • Lead strategy, architecture, and design of enterprise AI and Generative AI solutions.
  • Architect conversational AI platforms with complex workflows and enterprise integrations.
  • Design agentic and multi-agent architectures, including agent-to-agent transactions and orchestration.
  • Develop RAG architectures leveraging enterprise data for context and retrieval.
  • Utilize knowledge graphs to enhance reasoning and information retrieval.
  • Guide ML/Generative AI initiatives across business use cases.
  • Apply MCP to securely connect AI agents with enterprise tools and data.
  • Deploy AI/ML solutions on Google Cloud Platform with scalable services.
  • Lead technical strategy discussions with senior stakeholders.
  • Translate business requirements into clear AI solution designs and roadmaps.
  • Evaluate AI technologies and architectures to recommend best-fit approaches.
  • Establish best practices for AI scalability, security, governance, and responsible AI.
  • Provide technical leadership to engineering, data science, and platform teams.
  • Develop prototypes in Python to validate architectural concepts.

Skills

GCP Generative AI
LLMs
Agentic AI
Multi-Agent / A2A
Conversational AI
RAG
Knowledge Graphs
Machine Learning
Python
Enterprise AI Architecture
Document AI
GCP Architecture

Job description

Must Have GCP Generative AI LLMs Agentic AI Multi-Agent / A2A Systems Complex Chatbots / Conversational AI RAG Knowledge Graphs Machine Learning MCP Python Enterprise AI Architecture Document AI / Document Processing

For only EST or CST candidate

Position Overview
Core Technical Skills

Must Have GCP Generative AI LLMs Agentic AI Multi-Agent / A2A Systems Complex Chatbots / Conversational AI RAG Knowledge Graphs Machine Learning MCP Python Enterprise AI Architecture Document AI / Document Processing

linkedin As well

MUST COMPLETE ROPES ASSESSMENT

Ideal Candidate

This is not simply a hands‑on AI development role. The successful candidate will be someone who can operate at both the strategic and technical architecture levels working with leadership to define the AI vision while also going deep with engineering teams on how solutions should be designed and implemented. They should be comfortable walking into an ambiguous business problem, leading the conversation, identifying the appropriate AI approach, and translating that vision into a scalable enterprise architecture and actionable technical roadmap. We are seeking an experienced AI Solutions Architect to lead the strategy, architecture, and design of complex enterprise AI and Generative AI solutions. This individual will partner closely with business stakeholders, engineering teams, data teams, and leadership to translate business requirements into scalable AI architectures and drive technical conversations from concept through implementation. The ideal candidate will have deep experience designing high-complexity conversational AI and chatbot solutions, including agentic AI, multi-agent architectures, and agent-to-agent (A2A) interactions. This role requires a strong combination of AI architecture, machine learning, cloud, data, and hands‑on technical expertise.

Key Responsibilities
  • Lead the strategy, architecture, and technical design of enterprise AI, Generative AI, and Agentic AI solutions.
  • Architect sophisticated conversational AI/chatbot platforms capable of supporting complex workflows, reasoning, orchestration, and enterprise integrations.
  • Design agentic and multi-agent AI architectures, including agent-to-agent transactions, communication, orchestration, tool usage, and workflow execution.
  • Design and implement Retrieval-Augmented Generation (RAG) architectures leveraging enterprise structured and unstructured data.
  • Architect solutions utilizing knowledge graphs to improve contextual understanding, reasoning, relationships, and information retrieval.
  • Develop and guide machine learning and Generative AI solutions across enterprise use cases.
  • Design AI architectures leveraging Model Context Protocol (MCP) to securely connect AI agents and models with enterprise tools, systems, APIs, and data sources.
  • Architect and deploy AI/ML solutions within Google Cloud Platform (GCP), leveraging appropriate cloud-native AI, data, compute, and integration services.
  • Lead architecture discussions and technical strategy sessions with senior business and technology stakeholders.
  • Translate complex business requirements and technical documentation into clear AI solution designs, architecture patterns, roadmaps, and implementation strategies.
  • Evaluate AI technologies, models, frameworks, and architectural approaches and provide recommendations based on business and technical requirements.
  • Establish best practices around AI scalability, security, governance, performance, reliability, and responsible AI.
  • Provide technical leadership and architectural guidance to engineering, data science, machine learning, and platform teams.
  • Develop prototypes and reference implementations using Python to validate architectural concepts and AI capabilities.
Required Qualifications
  • Extensive experience as an AI Solutions Architect, AI Architect, ML Architect, or similar senior technical architecture role.
  • Strong experience architecting complex enterprise chatbot and conversational AI solutions.
  • Deep understanding of Agentic AI and multi-agent systems, including agent-to-agent (A2A) communication, orchestration, reasoning, tool calling, and autonomous workflows.
  • Strong hands‑on experience with Generative AI and Large Language Models (LLMs).
  • Strong experience designing and implementing Retrieval-Augmented Generation (RAG) solutions.
  • Experience with knowledge graphs, semantic relationships, graph-based retrieval, and/or knowledge-driven AI architectures.
  • Strong foundation in machine learning concepts, architectures, and production ML solutions.
  • Experience with Model Context Protocol (MCP) and integrating AI applications/agents with enterprise systems, APIs, tools, and data.
  • Deep experience with Google Cloud Platform (GCP) and building scalable AI/ML solutions in the GCP ecosystem.
  • Strong Python development experience for AI/ML applications, integrations, prototyping, and solution development.
  • Experience working with structured and unstructured enterprise data, including document ingestion, extraction, translation, summarization, and intelligent document processing.
  • Strong understanding of APIs, microservices, cloud architecture, data integration, security, and enterprise application architecture.
  • Ability to communicate complex AI concepts to both technical and non-technical stakeholders.
  • Demonstrated ability to drive AI strategy, influence architectural decisions, and lead technical conversations across multiple teams.
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