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From ChatGPT and Codex to an Agentic Terraform Platform
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From ChatGPT and Codex to an Agentic Terraform Platform

Last Updated on September 1, 2026 by Editorial Team

Author(s): Anooptej Thotapalli

Originally published on Towards AI.

What repeated infrastructure work taught me about deterministic discovery, probabilistic reasoning, guardrails, and keeping humans in control

Infrastructure automation has traditionally been deterministic.

From ChatGPT and Codex to an Agentic Terraform Platform

From AI-assisted infrastructure work to a guarded agentic engineering platform.

The article explains how, after repeatedly using ChatGPT and Codex to perform the same Terraform change workflow, the author shifted from asking whether an LLM can write Terraform to designing a guarded “agentic” infrastructure control plane. The core ideas are to separate deterministic discovery (facts pulled from repo, Terraform state, and cloud/network/IPAM/policy sources) from probabilistic LLM reasoning; treat LLM “confidence” as not evidence; reconcile desired state, Terraform-known state, and actual cloud state into verifiable evidence; and make Terraform plan artifacts the truth boundary (with human approval tied cryptographically to the exact plan executed). It also describes reducing blast radius by denying free shell access, enforcing preflight and re-approval gates before apply, modeling execution via an execution broker, and emphasizing post-deployment validation of real operational outcomes (not just “Apply complete”). Finally, it outlines a layered platform architecture (agents, evidence, guardrails/control plane, execution), guidance on multi-agent specialization, secure sharing without secrets, and the overarching principle: let AI reason broadly while deterministic systems verify aggressively and humans authorize consequential actions.

Read the full blog for free on Medium.

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