Enterprise technology executives face a dilemma when deploying generative artificial intelligence: unless there is measurable return on investment (either predicted or realized), the investment will not be made, or continue.
But Gen AI is quite new, so few entities will have at least a year’s worth of experience to make such outcome assessments.
So many projects essentially require some leap of faith or willingness to experiment.
source: Deloitte
And while it might be easy to argue that desirable outcomes include improving existing products and services fostering innovation gaining efficiencies and reducing costs, metrics must be devised and time has to elapse before measurement is possible.
Use Case | Metrics | Tracking Method |
Content Creation (e.g., marketing copy, product descriptions)
| Content creation speed Content quality Customer engagement with content
| Track time spent creating content Compare human-generated vs. AI-generated content quality through A/B testing Monitor website traffic, conversion rates, and customer feedback |
Product Design and Development
| Number of design iterations required Time to market for new products Customer satisfaction with product design
| Track design cycle times Monitor time spent on prototyping and development Conduct customer surveys to gauge satisfaction with product design and functionality
|
Data Augmentation (e.g., training machine learning models)
| Accuracy of machine learning models Training time for machine learning models Cost of data acquisition | Track model performance metrics (e.g., precision, recall) Compare training times with and without AI-generated data Monitor costs associated with data collection and labeling
|
Personalized User Experiences (e.g., product recommendations, chatbots)
| Customer satisfaction with personalization Conversion rates on recommended products Number of customer interactions handled by chatbots | Conduct customer satisfaction surveys Track website click-through rates and conversion rates for recommendations Monitor chatbot performance metrics (e.g., resolution rates, customer satisfaction scores)
|
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