AI Solution Architect

Systems Limited

Lahore

On-site

PKR 3,000,000 - 6,000,000

Full time

7 days ago
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Job summary

Systems Limited is seeking an AI Solution Architect who thinks in agents, reasons in models, and designs in flows. This is a ground-up role for someone with large language models experience who will own the end-to-end technical vision for AI-native solutions in enterprise settings.

You will lead design of AI-first workflows, select foundation models, and build MCP connectors to enterprise data sources, collaborating with product, engineering, and business stakeholders to translate ambiguous

Qualifications

  • 8+ years of software or solutions architecture experience, with hands-on AI/ML production work.
  • Experience building AI harnesses and agent orchestration frameworks.
  • Familiarity with MCP connectors and enterprise data integrations.

Responsibilities

  • Lead the design and delivery of AI-first solutions and production-grade architectures.
  • Architect AI harnesses for multi-step reasoning, tool use, memory, and retrieval.
  • Design MCP connectors and integrations to extend AI capabilities into data sources.
  • Evaluate foundation models and tuning strategies for diverse use cases.
  • Define prompt patterns, guardrails, and evaluation methods for repeatable success.
  • Collaborate with product and engineering to translate blueprints into code and infra.
  • Communicate complex decisions clearly to non-technical stakeholders.
  • Support pre-sales discussions by articulating technical credibility of AI offerings.
  • Drive internal AI initiatives and collaboration with leadership to embed AI company-wide.

Skills

AI/ML architecture
Agent orchestration
LLM APIs
RAG pipelines
Cloud deployments

Education

Bachelor's degree in Computer Science or related field

Tools

LangChain
LlamaIndex
AutoGen
MCP connectors
OpenAI API

Job description

Systems Limited is looking for an AI Solution Architect who thinks in agents, reasons in models, and designs in flows. This is not a traditional architecture role retrofitted with AI — it is a ground-up position for someone who has built with large language models, wired up MCP connectors, and shipped AI-powered products in the real world.

You will own the end-to-end technical vision for AI-native solutions: from whiteboarding an agentic workflow to selecting the right model, harness, and integration layer. You will work closely with product, engineering, and business stakeholders to translate ambiguous problems into elegant, reliable AI architectures.

This role also comes with rare exposure: you will have the opportunity to work on AI engagements with some of System's most iconic North American customers — organizations where the work you design will operate at real scale and leave a lasting mark.

Responsibilities :
  • Lead the design and delivery of AI-first solutions — setting the architectural standard for how LLMs, agents, and AI skills are composed into production-grade systems.
  • Architect and oversee AI harnesses that orchestrate multi-step reasoning, tool use, memory, and retrieval across complex workflows.
  • Design and build MCP (Model Context Protocol) connectors and integrations that extend AI agent capabilities into enterprise data sources and third-party services.
  • Evaluate and select the right foundation models, fine-tuning strategies, and inference configurations for each use case.
  • Define patterns for prompt engineering, context management, guardrails, and evaluation — and make them reusable across teams.
  • Partner with engineering teams to translate architectural blueprints into implementable, maintainable code and infrastructure.
  • Engage with executive and business stakeholders to communicate complex AI design decisions in plain language.
  • Support pre-sales for AI engagements — joining client conversations, shaping proposals, and articulating the technical credibility behind Systems's AI offerings.
  • Lead and champion internal AI initiatives such as AI Ignite, driving experimentation, knowledge sharing, and a culture of continuous AI learning across the organisation.
  • Work hand-in-hand with Confiz leadership to define and execute the strategy for becoming an AI-native company — influencing how AI is embedded across delivery, operations, and go-to-market.
  • Stay current with the fast-moving AI landscape (models, frameworks, protocols) and proactively bring new capabilities to the table.
Requirements
  • 8+ years of overall software or solutions architecture experience, with at least 3 years hands‑on with AI/ML systems in production.
  • Direct experience building or working with AI harnesses and agent orchestration frameworks (e.g. LangChain, LlamaIndex, AutoGen, custom implementations).
  • Hands‑on experience designing or consuming MCP connectors or equivalent plugin/tool-use integration patterns.
  • Deep familiarity with LLM APIs (OpenAI, Anthropic, Gemini, or open‑weight models) and the tradeoffs between them.
  • Strong grasp of RAG pipelines, vector stores, semantic search, and knowledge retrieval architectures.
  • Experience with modern cloud infrastructure (AWS, Azure, or GCP) and the ability to design scalable, cost‑efficient AI deployments.
  • Excellent written and verbal communication skills — you can write a crisp architecture doc and present it to a non‑technical executive in the same morning.
  • A bachelor's degree in Computer Science or a related field is highly preferred.
  • AI‑first by default: your first instinct for any new problem is to ask how an LLM or agent can solve it — and then apply sound judgment about when it shouldn't.
  • Comfortable with ambiguity: you can drive to a decision when requirements are still forming.
  • Pragmatic over dogmatic: you prefer shipped solutions to perfect designs that live in documents.
  • Collaborative by nature: you raise the technical bar of everyone around you, not just your own output.
Nice to have:
  • Experience with multi‑modal AI systems (vision, audio, structured data).
  • Contributions to open‑source AI tooling or published writing on AI architecture.
  • Familiarity with AI safety, responsible AI, and evaluation best practices.
  • Experience in a product company or innovation‑led consultancy building AI products end‑to‑end.
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