AI Systems That Reason, Retrieve, Build, and Run Themselves

We design and operate the four capabilities modern AI products actually need: autonomous agents that get work done, retrieval systems that keep answers grounded in your data, Claude Code integration that speeds up how your engineers ship, and the LLMOps backbone that keeps all of it reliable in production.

What We Do

Most “AI initiatives” stall between the demo and production. TM Square closes that gap. We combine four disciplines that are usually sold separately — agent engineering, retrieval architecture, developer-tooling integration, and operations — into a single, coherent deliverypractice, so your AI systems don’t just work in a demo, they work every day, under load, with guardrails

Why Partner With TM SQUARE

Full-Stack AI Expertise

We work across the entire stack — from agent reasoning and orchestration down to vector infrastructure and deployment pipelines — so you don't need four vendors for one system.

Grounded, Not Hallucinated

Every agent and assistant we build is anchored to your real data through retrieval architectures designed for accuracy, not just fluency.

Engineering-Team Native

We meet your developers where they work — inside the IDE, the terminal, and the CI/CD pipeline — with hands-on Claude Code integration, not just AI strategy slides.

Production-First Discipline

Evaluation, observability, and cost controls are built in from day one, not bolted on after something breaks.

Safety & Governance by Design

Autonomous systems get guardrails, permissioning, and human checkpoints wherever the stakes require them.

End-to-End Delivery

From discovery and architecture through deployment and ongoing optimization, one team owns the outcome.

Our AI Solutions

1. Agentic AI

We design and deploy autonomous agents that perceive context, plan multi-step actions, and execute — handling real workflows, not just
answering questions.

  • Agent strategy: identifying which processes are ready for
    autonomous handling
  • Custom agent development (reasoning, planning, decision-
    making, memory)
  • Multi-agent system design — coordinated teams of agents for complex tasks
  • Tool, API, and system integration so agents can actually take action
  • Autonomous workflow automation, end to end
  • Agent monitoring, control, and governance dashboards

2. Retrieval-Augmented Generation (RAG)

We build retrieval systems that ground your AI in your enterprise data — securely, accurately, and in real time — so answers are sourced, not guessed.

  • RAG architecture design: chunking strategy, embeddings, vector store selection
  • Hybrid search and re-ranking for higher-precision retrieval
  • Real-time and structured/unstructured data integration
  • Permission-aware retrieval that respects your existing access controls
  • Evaluation frameworks to measure and reduce hallucination
  • Continuous sync so the knowledge base never goes stale

3. Claude Code Integration

We bring Claude Code into your engineering workflow so your developers ship faster — with an agentic coding assistant that understands your codebase, your tools, and your process.

  • Rollout and onboarding for engineering teams
  • Custom skills and subagents tailored to your codebase and
    internal tooling CI/CD and Git workflow integration (PRs, reviews, testing, releases)
  • MCP server connections to internal systems — Jira, GitHub, internal APIs, data stores
  • Automated code review, refactoring, and PR-assist agents
  • Permissioning and guardrails for safe autonomous code changes

4. LLMOps

We build the operational layer that keeps agentic and RAG systems
reliable, observable, and cost-efficient once they’re live — because production is where most AI projects actually fail.

  • Prompt and model versioning with proper CI/CD pipelines
  • Evaluation and automated regression testing (accuracy, safety, hallucination)
  • Full observability and tracing across agent and LLM calls
  • Cost and latency monitoring and optimization
  • Guardrails, content filtering, and compliance monitoring
  • Incident response and rollback processes for AI systems in
    production

Our Delivery Process

01

Discover & Map

We identify the workflows, data, and engineering processes with the highest-value opportunity for agentic, retrieval, or coding-assistant capability.

02

Architect

We design the system: agent boundaries, retrieval pipeline, integration points, and the safety constraints each requires.

03

Build & Integrate

We develop the core logic and connect it to your data, APIs, repos, and existing tools.

04

Test & Evaluate

We validate behavior, accuracy, and safety in simulated and staged environments before anything touches production.

05

Deploy

We roll out in phases, with monitoring and human checkpoints active from day one.

06

Operate & Optimize

We keep watching performance, cost, and accuracy post-launch, and tune continuously — this is where LLMOps discipline pays off.

Where This Applies

Software & Engineering Teams

Claude Code integration for faster shipping, plus agents that handle code review, testing, and internal tooling.

Financial Services

Compliance-aware RAG for policy and regulatory Q&A, agentic monitoring for reporting and reconciliation.

Customer Support

Agents that resolve multi-step issues autonomously, grounded in your product and policy documentation via RAG.

Healthcare & Life Sciences

Retrieval systems grounded in clinical and research data, with strict permissioning and audit trails.

Supply Chain & Operations

Autonomous agents for inventory, scheduling, and exception handling across complex, multi-system workflows.

Legal & Compliance

RAG-powered research and drafting support, with LLMOps-grade evaluation to keep outputs auditable.

Ready to Move From AI Pilot to AI in Production?

Most AI projects stall at the demo stage. We build the agents, retrieval systems, developer tooling, and operational discipline to get yours actually running — and keep running.

Fill the form to reach us

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