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Education, discipline, delivery

PromptEngineering.org is the public education and research brand. AgentEngineering.org is the discipline site for working agent systems. Axys Analytics is the consulting and execution side. Same operator; different job.

Education & research

PromptEngineering.org

I founded PromptEngineering.org as the education and research home for practical AI literacy: prompt systems, production agentic workflows, and the frameworks teams can actually run. I publish libraries — Partials, Agents, and Miniscripts — and the site reaches 20k+ subscribers.

Visit PromptEngineering.org
  1. ACE

    Aim, Coordinate, Execute — split intent, routing, and deterministic work so automations stay testable.

  2. 5C

    Clarity, Contextualization, Command, Chaining, Continuous Refinement — a prompt-construction loop.

  3. PseudoLangs

    Constructed notations between prose and code, so encoding — not just wording — carries the load.

Also on the site: System Prompts for LLMsThe 5C FrameworkPartials libraryAgents libraryMiniscripts & Processors

Early foundations

I started this as a labour of love on early models — GPT-2, GPT-Neo, GPT-J, and the major open and API systems of that window. I did not invent prompting. Prompt engineering was never just prompting: exemplars were one hard part; the rest was the surround around the template — storage, retrieval, versioning, routing, evaluation, tooling. That lineage later got names like harness and context engineering. The 2023 pieces below grew out of that practice.

In 2023 I published practitioner architectures on PromptEngineering.org that researchers and builders could build on. This is early scaffolding the field’s later vocabulary — orchestrator–worker, least-privilege context, harness and context engineering, AgentOps — grew around. I did not invent the frontier, and I am not saying later teams copied me.

Jul 2023 · Multi-agent networks

GAINs — coordinator, specialists, validators

In July 2023 I published GAINs: a Central Coordination Agent plus ephemeral specialists and validation/QA agents. An early practitioner multi-agent architecture — a precursor to today’s orchestrator–worker stacks — in the same early window as MetaGPT, and before AutoGen’s mainstream launch narrative.

Aug 2023 · Precursor stack

Precursor to harness & context engineering

In August 2023, before “context engineering” and “harness engineering” became common labels, I published a full practitioner LLM-agent structure: Prompt Recipe + Interface + Tools + Knowledge + Memory (kept separate) + supervisor loop — with the Typical Structure diagram. Research surveys that summer often stopped at Planning / Memory / Tool Use; this stack maps the layers those later disciplines named.

Aug 2023 · Agent architecture

Memory ≠ knowledge

In that same August 2023 agents piece I kept short-term context, long-term memory, and durable knowledge logically separate — so a run can reset memory without wiping knowledge, and the stores stay easier to audit and harder to poison. That split is now table stakes. It pairs with the harness/context precursor; it does not repeat that card.

Nov 2023 · Privileged flow

HCIN — tiered agents with need-to-know context

In November 2023 I published HCIN as a tiered evolution of GAINs: Primary → Executive → Operational, with privileged, need-to-know context and validation at tier boundaries. Early least-privilege multi-agent design — not a claim that I invented hierarchical agent systems.

The discipline

AgentEngineering.org

Less hype. More working systems. The site covers the design, tooling, evals, failure modes, and operating practice behind AI agents that have to survive real work. Read foundations first, then mechanics, then AgentOps.

Visit AgentEngineering.org
  1. Foundations

    What an agent is, what changes from a plain LLM, and how much autonomy a task actually needs.

  2. Mechanics

    How systems decompose work, take action with tools, remember, and reason through multi-step runs.

  3. AgentOps

    Traces, evaluations, guardrails, and human controls as an ongoing production practice.

Also on the site: When to Use a Workflow Instead of an AgentTool Use: How Agents Take Action

Cited by

Timeline

  1. Mar 2022 – Present

    Founder

    PromptEngineering.org

  2. Oct 2018 – Present

    Founder / AI Solutions Architect

    Axys Analytics

  3. Oct 2018 – Jul 2019

    Co-Founder

    LifeBot Automation Limited

  4. Jul 2015 – Oct 2018

    Head Joint Venture and Investments, Internal Audit

    The National Gas Company of Trinidad and Tobago Limited

  5. Jul 2012 – Jun 2015

    Lead IS Auditor

    Petrotrin