AI Solution Architect

Posted 2 Days Ago
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Dallas, TX, USA
In-Office
Expert/Leader
Cloud • Analytics • Consulting
The Role
Leads discovery, architecture, prototyping, and delivery enablement for AI-powered business solutions. Designs generative AI, agentic, RAG, automation, predictive, and hybrid systems; guides developers through implementation; evaluates platforms and models; and embeds responsible AI, security, privacy, governance, observability, and evaluation controls. The role also creates reusable architectures and playbooks, communicates technical decisions to executives and stakeholders, and mentors engineers through architecture and code reviews.
Summary Generated by Built In
Anblicks is seeking an AI Solution Architect to lead the evaluation, architecture, prototyping, and delivery enablement of AI-powered business solutions. This is a hands-on role for an architect who can move from an ambiguous business problem to a practical solution blueprint, validate feasibility through a proof of concept, and guide developers through implementation. The role spans generative AI, agentic systems, intelligent automation, predictive solutions, data integration, and responsible AI controls.

Responsibilities
  • Use-case discovery and prioritization: Facilitate business and technical discovery, assess whether AI is appropriate, define expected outcomes, and prioritize opportunities by value, feasibility, risk, and adoption readiness.
  • Solution blueprinting: Translate business needs into platform-neutral solution options covering generative AI, agentic workflows, RAG, automation, predictive models, or hybrid patterns.
  • Detailed architecture: Create end-to-end designs for model interaction, orchestration, data and tool access, APIs, identity, observability, evaluation, security, and operational support.
  • Proof of concept: Build or directly guide prototypes that validate technical feasibility, user value, quality, performance, and key risks before scaled implementation.
  • Developer enablement: Provide design walkthroughs, reference patterns, technical decisions, code-level guidance, and reviews throughout delivery rather than relying on document-only handoffs.
  • Platform and model assessment: Evaluate cloud AI services, foundational models, agent frameworks, integration patterns, and supporting data platforms against enterprise requirements.
  • Responsible AI and governance: Embed privacy, security, auditability, human oversight, evaluation, content safety, and risk controls into architecture and delivery gates.
  • Stakeholder communication: Present architecture decisions, trade-offs, recommendations, and progress to engineering leaders, business stakeholders, risk partners, and executives.
  • Reusable assets: Develop reference architectures, templates, guardrail patterns, evaluation scorecards, and playbooks that improve future delivery speed and consistency.

Required Qualifications
  • 10+ years of technology delivery experience, including significant solution architecture or technical leadership responsibility.
  • Proven experience designing and delivering production-grade AI solutions such as LLM applications, RAG systems, agentic workflows, intelligent automation, or ML-enabled products.
  • Hands-on software engineering capability in Python and/or a modern full-stack technology, including APIs, cloud-native services, integration, testing, and deployment practices.
  • Ability to translate loosely defined business problems into measurable use cases, architecture decisions, implementation increments, risks, and acceptance criteria.
  • Experience with prompt and context design, model evaluation, grounding approaches, tool/API integration, observability, and secure deployment patterns.
  • Strong knowledge of enterprise data architecture, SQL, data quality, semantic concepts, and data-access controls.
  • Understanding of responsible AI, privacy, security, model risk, and governance practices for sensitive enterprise data.
  • Clear written and verbal communication, including the ability to influence technical and executive audiences.
  • Experience mentoring engineers and performing architecture and code reviews in iterative delivery environments.

Preferred Qualitiffications
  • Experience with Microsoft Azure AI services, Azure AI Foundry, Azure OpenAI, Azure data services, or comparable cloud AI platforms.
  • Experience with Anthropic Claude, OpenAI-compatible APIs, Model Context Protocol, vector search, knowledge graphs, agent frameworks, and enterprise RAG patterns.
  • Full-stack experience with modern web frameworks, API gateways, containers, CI/CD, infrastructure as code, and production observability.
  • Experience in financial services, lending, collections, servicing, compliance, risk, dealer operations, or another highly regulated industry.
  • Familiarity with PII/NPPI controls, model validation, audit evidence, and human-in-the-loop approval patterns.
  • Cloud or AI architecture certifications.

Skills Required

  • 10+ years of technology delivery experience, including significant solution architecture or technical leadership responsibility.
  • Experience designing and delivering production-grade AI solutions, including LLM applications, RAG systems, agentic workflows, intelligent automation, or ML-enabled products.
  • Hands-on software engineering capability in Python and/or modern full-stack technology, including APIs, cloud-native services, integration, testing, and deployment practices.
  • Ability to translate loosely defined business problems into measurable use cases, architecture decisions, implementation increments, risks, and acceptance criteria.
  • Experience with prompt and context design, model evaluation, grounding approaches, tool/API integration, observability, and secure deployment patterns.
  • Strong knowledge of enterprise data architecture, SQL, data quality, semantic concepts, and data-access controls.
  • Understanding of responsible AI, privacy, security, model risk, and governance practices for sensitive enterprise data.
  • Clear written and verbal communication, including the ability to influence technical and executive audiences.
  • Experience mentoring engineers and performing architecture and code reviews in iterative delivery environments.
  • Experience with Microsoft Azure AI services, Azure AI Foundry, Azure OpenAI, Azure data services, or comparable cloud AI platforms.
  • Experience with Anthropic Claude, OpenAI-compatible APIs, Model Context Protocol, vector search, knowledge graphs, agent frameworks, and enterprise RAG patterns.
  • Full-stack experience with modern web frameworks, API gateways, containers, CI/CD, infrastructure as code, and production observability.
  • Experience in financial services, lending, collections, servicing, compliance, risk, dealer operations, or another highly regulated industry.
  • Familiarity with PII/NPPI controls, model validation, audit evidence, and human-in-the-loop approval patterns.
  • Cloud or AI architecture certifications.
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The Company
HQ: Addison, TX
568 Employees
Year Founded: 2004

What We Do

Anblicks is a Cloud Data Analytics Company based out of Dallas, TX, with offices in USA, India, and Australia. Since 2004, Anblicks has been helping customers by bringing value to their data and implementing modern data architecture and advanced analytics solutions in the cloud.

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