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Home » Articles » How to implement AI in your business: eliminate, automate, reallocate

How to implement AI in your business: eliminate, automate, reallocate

  • Most AI implementations fail because they start with software, not a business problem.
  • The fix is a three-step framework: eliminate, automate, then reallocate, in that order.
  • Governance and data belong with the board, and value should be tied to a business metric before you begin.
  • Outsourcing enters only at the final step, once wasted work is gone and what remains is automated.

Boards want an AI strategy, budgets are being signed off, and most of the money is going to waste.

A 2025 MIT study found that around 95% of enterprise generative AI pilots deliver no measurable return. The problem is rarely the technology. It is that companies start with a tool instead of a problem.

On the Outsource Accelerator Podcast, Scott Stavretis, CEO and co-founder of Acquire Intelligence, laid out a simple framework for doing it the other way round.

This guide explains how to implement AI in your business, in the right order.

What does it mean to implement AI in a business?

Implementing AI means changing how work gets done so that generative AI and automation take on tasks that people used to do, in service of a clear business goal.

AI adoption should connect automation to a clear business goal

The distinction that matters is problem-first versus tool-first. Most organizations do it backwards, and Scott is blunt about the result.

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“Companies are still looking at, ‘Here’s a piece of software. How do we put it in our business?’ Which is just the totally wrong way to go about it… It’s really fundamentals. What does the business need?”

Done properly, implementation starts with the outcome the business is chasing, and only then asks which technology, if any, helps.

Why most AI implementations fail

The failures usually trace back to the same root cause: a solution goes looking for a problem. Boards apply pressure, vendors push tools, and teams end up buying whatever is fashionable rather than what moves the business.

“People are focusing on a solution because that’s sexy, but it’s not actually the one that’s gonna move the needle in their business the most.”

That is why the MIT figures land the way they do. Pilots stall because nobody defined the value first, and the same research found that tools bought from external specialists succeeded roughly twice as often as those built in-house.

Some providers now build that discipline into how they sell. Acquire Intelligence, for example, runs an AI readiness assessment before scoping any implementation and puts an ROI guarantee behind it: if the work does not deliver the agreed return, the client does not pay for the AI solution.

The eliminate, automate, reallocate framework

Scott’s method is three steps, and the order is the entire point. Skip a step and you automate work that should not exist.

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1. Eliminate the work that should not exist

Before automating anything, ask whether the task needs doing at all. This is the step almost everyone skips, and it is where the biggest gains hide.

“Is there some software out there that can do this? Can we just automate it? Do we need to actually do it at all? Is there a whole different way to do it?”

Strip out redundant approvals, duplicate data entry, and reports nobody reads before a single tool is bought.

2. Automate what survives

Whatever remains after the cull is a candidate for automation. Use software and AI where they fit, and keep a human in the loop only where you genuinely need one.

“How do you make things as quick as possible or streamlined as possible and do that with AI and automation?”

The goal is efficiency on work that has already earned its place, not clever automation layered over waste.

3. Reallocate people to higher-value work

Only now do the people move. Staff freed from eliminated or automated tasks shift to higher-value work, whether inside the business or through an outsourcing partner.

“Once you sort of eliminate all the wasted processes, then automate them, and then only then can you reallocate the humans that were doing the work to do the right thing.”

Scott now runs this as a continuous loop, working through one department after another and then starting again, rather than treating it as a one-off project.

Get governance right before you scale

As implementation spreads, governance has to keep pace, and Scott argues it belongs with the board rather than with the people choosing tools. Data protection is the core obligation, and his test for it is refreshingly plain.

“A lot of it is just that good faith test. What do they actually think you’re doing with it? And are you doing something much different with it that they wouldn’t like?”

A recognized structure helps. Frameworks such as the NIST AI Risk Management Framework give boards a way to document AI decisions, protect customer and employee data, and stay ahead of tightening privacy rules.

NIST’s AI Risk Management Framework helps boards document AI decisions

Frequently Asked Questions

How long does it take to implement AI in a business?

There is no fixed timeline, but a phased, department-by-department rollout almost always beats a single big-bang launch. Early eliminate-and-automate wins in one function can land in weeks, while a full transformation across a business runs over months or longer. Treating it as a continuous loop, rather than a project with an end date, tends to compound the returns.

What skills or roles do you need to implement AI?

AI implementation is less a technical hire than a cross-functional effort. You need process analysts who can map and question workflows, a data and governance owner accountable for compliance, change-management support to move people into new roles, and an implementation manager to coordinate delivery. Engineering talent matters, but it comes after the problem is defined.

How do you measure the ROI of an AI implementation?

Tie the work to a single business metric before you start, such as cost per transaction, resolution time, or sales conversion, then measure against a baseline. For larger transformations, some providers use an outcome-based pricing arrangement or an ROI threshold, where payment depends on hitting the agreed result. The key is defining the target first, not retrofitting a number once the tool is live.

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About Derek Gallimore

Derek Gallimore has been in business for 20 years, outsourcing for over eight years, and has been living in Manila (the heart of global outsourcing) since 2014. Derek is the founder and CEO of Outsource Accelerator, and is regarded as a leading expert on all things outsourcing.

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