Derisk360
Guide

AI Deployment Timeline

Typical AI deployment timeline: 12-week accelerator from discovery to governed go-live — context weeks 1–3, agents 4–8, eval and deploy 9–12.

Typical AI deployment timeline: 12-week accelerator from discovery to governed go-live — context weeks 1–3, agents 4–8, eval and deploy 9–12.

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OVERVIEW[ 01 / 04 ]

Overview

Typical 12-week accelerator timeline from discovery to governed production go-live.

Typical 12-week accelerator timeline from discovery to governed production go-live.

AI Deployment Timeline is written for AI programme owners, technology leaders, and operations executives in regulated enterprises. Most organisations fail not because models are inadequate — but because context, governance, evaluation, and operational ownership are missing when pilots attempt to reach production.

Derisk360 practitioners embed Forward Deployed Engineers inside your business and run structured accelerators — from discovery through governed go-live in your VPC. This guide reflects that delivery model: practical steps you can execute with embedded teams, not abstract best practices that stall at proof-of-concept.

Key takeaways

Practical steps for regulated enterprise environments

Designed for production go-live — not endless pilots

Aligns with Derisk360 accelerator delivery model

Typical governed production in under 12 weeks

PREREQUISITES[ 02 / 04 ]

Before you start

Align business, risk, and technology stakeholders on the highest-value use case — not the most fashionable one. Confirm data access, regulatory constraints, and who owns production operations after go-live.

If you lack unified context infrastructure, plan context engineering as the first accelerator phase. Agents built on demo datasets will fail model risk review.

DERISK360[ 03 / 04 ]

How Derisk360 applies this guide

We implement every guide through outcome-based services — embedded FDEs, FDEE-led evaluation, and 24/7 managed operations. Book a discovery call to map your use case and scope an accelerator tailored to your industry.

STEPS[ 04 / 04 ]

Step-by-step implementation.

  1. 1

    Weeks 1–2: Discovery

    Embedded FDEs map workflow, data, and compliance; executive sponsor alignment.

  2. 2

    Weeks 2–4: Context engineering

    MCP connectors, graph setup, field qualification.

  3. 3

    Weeks 4–8: Agent configuration

    Multi-agent workflows, guardrails, HITL UI.

  4. 4

    Weeks 6–10: Evaluation

    Harnesses, red teams, model risk evidence pack.

  5. 5

    Weeks 10–12: Go-live

    VPC deploy, ops handover, Layer 04 metrics.

  6. 6

    Post go-live: Managed ops

    Optional 24/7 FDEE monitoring and tuning.

HOW WE DELIVER[ 05 / 04 ]

Four phases to production go-live.

01 / PLUG IN

Embed & discover

FDEs embed inside your business, learn the domain, and scope the highest-value use case for this accelerator.

02 / INGEST

Unify context

Connect source systems into a governed context layer — MCP, knowledge graphs, and field mapping in your environment.

03 / BUILD

Configure & evaluate

Build governed agent workflows, run eval harnesses, and tune against your policies before go-live.

04 / RUN

Deploy & monitor

Go live securely in your cloud with FDEE-led monitoring, continuous evaluation, and proactive tuning.

Related resources

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Frequently asked questions

What is ai deployment timeline?
Typical 12-week accelerator timeline from discovery to governed production go-live.
How long does production go-live take?
Typical accelerator engagements reach governed production go-live in under 12 weeks for priority use cases in banking and insurance.
Who should read this guide?
AI programme owners, technology leaders, and operations executives responsible for moving enterprise AI from pilot to production.
How do I engage Derisk360?
Book a discovery call at derisk360.com/book to map your use case.
Can Derisk360 implement this guide for us?
Yes. Every guide maps to accelerator delivery with embedded FDEs who implement in your environment.