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New post: 5 Things AI agents need before they deliver

Many companies add AI agents to processes that were designed for people, and then wonder why the results are unreliable and the process is no faster than before. In my new article, I explain the five causes behind this and show five building blocks that make agents deli…

More AI Tools, Faster Output. But Has the Work Actually Become Easier?

I often hear this comment and challenge when I speak with leaders in my AI Practice Hub: We have more AI tools and faster output, but the work has not become easier.
This is the gap is real: AI has made individual tasks faster, but the way the work is organised has st…

3 decisions to make before you scale AI

AI results depend on three decisions that only the leadership team can make. A company can have tools, training and pilots in place and still see little value if these decisions stay open. In this article ,I walk through all the steps to put these decisions to work.

3 Metrics That Matter More Than Usage Stats

Look closely at most AI strategy documents, and you will find the same ingredients: the same tool rollouts and licences, a handful of pilots, some prompt training for staff, maybe a governance policy. This is all useful, but none of it is a strategy. This article shows …

Five factors that decide whether AI transformation actually works

In almost every AI project I work on, the focus sits on the technology decision. What gets far less attention is what happens afterwards: whether the organisation actually uses it, who is responsible for it, and whether leadership stays involved once the first excitemen…

Is AI actually saving your team time?

Ask people whether AI is saving time, and you will usually get a confident yes. But if you look behind the scenes, you often get another picture, and it gets more complicated. This is one of the most underestimated problems in AI adoption. AI adoption that increases wor…

Everyone Talks About AI Governance — But very few know how to make it work in daily workflows. This is about how to set it up.

The real challenge is maintaining a balance between governance and speed. It’s designing governance that supports daily work, provides clarity, and accelerates safe adoption. This is exactly what I break down in this article.

Stop fixing prompts, start engineering the context. A practical framework that turns inconsistent AI into a reliable organisational capability

The shift for better AI output happens when teams stop asking, “How can we phrase this better?” and start asking,  “What does the system need in order to perform reliably in our workflow?” That question marks the move from prompting to context engineering.

From Experimenting to Operating — How to Turn AI Into a Reliable Part of Daily Work

What is often missing is the AI operational layer in organisations: the habits, workflows, ownership structures, and validation routines that turn occasional AI use into reliable AI use. Without this layer, AI remains something people do when they remember, not somethin…

How to Build an AI Ecosystem Without Transforming Everything at Once – A Practical 3-Phase Framework

Real organisational advantage comes from redesigning the entire system of work, not just automating pieces of it. The answer for AI transformation is: Starting small without staying small. Start small but design for scale from day one. Start with one workflow that matte…

New post: 5 Things AI agents need before they deliver

Many companies add AI agents to processes that were designed for people, and then wonder why the results are unreliable and the process is no faster than before. In my new article, I explain the five causes behind this and show five building blocks that make agents deli…

read more...

3 decisions to make before you scale AI

AI results depend on three decisions that only the leadership team can make. A company can have tools, training and pilots in place and still see little value if these decisions stay open. In this article ,I walk through all the steps to put these decisions to work.

read more...

3 Metrics That Matter More Than Usage Stats

Look closely at most AI strategy documents, and you will find the same ingredients: the same tool rollouts and licences, a handful of pilots, some prompt training for staff, maybe a governance policy. This is all useful, but none of it is a strategy. This article shows …

read more...

Is AI actually saving your team time?

Ask people whether AI is saving time, and you will usually get a confident yes. But if you look behind the scenes, you often get another picture, and it gets more complicated. This is one of the most underestimated problems in AI adoption. AI adoption that increases wor…

read more...

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