AI, Machine Learning, NLP and AI Governance Course
At a glance
- Duration
- 5 days
- Format
- Classroom
- Cities
- Tbilisi, Kuwait, Doha, Amman, Abu Dhabi, New York and more
- Next session
- 12 – 16 October 2026, Tbilisi
- Average fee
- 5,800 €
Overview
This five-day AI professional programme in machine learning, NLP and AI governance is a practical tour of how AI models are actually built, from a spreadsheet of raw data to a working text classifier. Participants work in guided Python notebooks using scikit-learn, PyTorch and Hugging Face libraries, and carry one realistic customer-feedback dataset through the whole week: cleaning it, predicting churn with classic machine learning, training a small neural network, fine-tuning a transformer to tag complaints by topic, and finally writing a model card that explains what the model can and cannot be trusted to do. No prior coding experience beyond basic scripting is assumed; every notebook is pre-built so participants can focus on understanding each step. This course is delivered by Agile Leaders Training Center.
Who Should Attend
- Analysts who use Excel or SQL and want to understand how predictive models are trained
- Developers adding a text or image feature to an existing application
- Product owners who brief data teams and need to judge what is feasible
- Researchers and engineers moving from statistics into neural networks and language models
- Team leads preparing an internal AI pilot and its documentation
Departments and Industries
Relevant to any team sitting on text, tabular or image data it wants to use.
- Customer service and contact centre analytics
- Marketing and e-commerce personalisation teams
- Clinical documentation and medical imaging groups
- Quality inspection on manufacturing lines
- Banking teams working with transaction and document data
Learning Objectives
By the end of this course, participants will be able to:
- Use pandas to prepare a messy dataset: missing values, encoding, scaling and train/test splits.
- Compare logistic regression, random forest and gradient boosting models trained in scikit-learn.
- Evaluate a confusion matrix, precision, recall and ROC curve and choose a sensible threshold.
- Build and train a small feed-forward and convolutional network in PyTorch.
- Apply Hugging Face to fine-tune a pre-trained transformer for text classification.
- Build a model card and a short data sheet describing intended use, limits and known biases.
Course Agenda
Day 1: From Raw Data to a Clean Table
- What machine learning is, and when a simple rule works better
- Notebook setup: Python, pandas and plotting in Jupyter
- Exploring the course dataset: distributions, outliers and leakage traps
- Handling missing values, categorical encoding and scaling
- Train, validation and test splits done correctly, ending with a clean, model-ready table
Day 2: Classic Machine Learning
- Linear and logistic regression explained with one feature, then many
- Decision trees, random forests and gradient boosting, used to build a churn model that beats the baseline
- K-means clustering to segment customers
- Cross-validation and grid search for hyperparameters
- Reading feature importance without over-interpreting it
Day 3: Neural Networks
- Neurons, layers, loss functions and gradient descent in plain terms
- Writing a training loop in PyTorch
- Overfitting, dropout and early stopping seen on live curves
- Convolutional networks for images: filters and pooling
- Transfer learning with a pre-trained image model to classify product photos as defective or acceptable
Day 4: Working with Language
- From words to numbers: tokenisation, bag-of-words and embeddings
- How transformers and attention work, at a whiteboard level
- Fine-tuning a pre-trained model to tag customer complaints by topic and urgency
- Named entity extraction and sentiment scoring
- Prompting a large language model versus fine-tuning a small one
Day 5: Responsible Use and Putting a Model to Work
- Checking a model for unequal error rates across customer groups
- Personal data in training sets: minimisation and anonymisation
- Writing a model card and a data sheet
- Wrapping a model in a simple API and a demo interface
- Planning an internal pilot: success measure, users and fallback, with a closing capstone review
Practical Exercises
The following suggested activities carry the course dataset from raw table to documented model.
- Suggested activity: build a churn prediction notebook and compare the model against a simple baseline.
- Suggested activity: train a defect image classifier using transfer learning.
- Suggested activity: fine-tune a pre-trained transformer as a complaint topic tagger.
- Suggested activity: complete a model card for your own final model.
FAQs
How much programming do I need?
Comfort with basic scripting or spreadsheet formulas is enough. Notebooks are provided pre-written; participants edit and run cells rather than write code from scratch.
How many hours does the course run?
Four to five hours a day across five days, around 20 to 25 hours in total, most of it hands-on lab time.
Do I need a powerful laptop?
No. Labs run in a hosted notebook environment, including the neural network and transformer exercises.
Conclusion
Participants leave having built three working models themselves, a churn predictor, an image classifier and a complaint tagger, with the vocabulary to discuss machine learning, NLP and AI governance confidently and a documented model card they can use as a template for the next AI project back at work.
credits: 5 credit per day
Course Mode: full-time
Provider: Agile Leaders Training Center
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Events for this Course
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Tbilisi 12 – 16 October 2026
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Kuwait 18 – 22 October 2026
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Doha 25 – 29 October 2026
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Amman 1 – 5 November 2026
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Abu Dhabi 9 – 13 November 2026
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New York 16 – 20 November 2026
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London 23 – 27 November 2026
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Munich 23 – 27 November 2026
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Montreux 30 November – 4 December 2026
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Athens 7 – 11 December 2026
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Paris 14 – 18 December 2026
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Amsterdam 14 – 18 December 2026
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Nice 21 – 25 December 2026
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Madrid 28 December 2026 – 1 January 2027
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Geneva 3 – 7 January 2027
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Johannesburg 10 – 14 January 2027
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Istanbul 11 – 15 January 2027
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Dubai 18 – 22 January 2027
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Zanzibar 24 – 28 January 2027
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Paris 25 – 29 January 2027
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Bangkok 31 January – 4 February 2027
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London 1 – 5 February 2027
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Milan 8 – 12 February 2027
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Barcelona 8 – 12 February 2027
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Trabzon 14 – 18 February 2027
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Cairo 22 – 26 February 2027
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Amsterdam 22 – 26 February 2027
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Kuala Lumpur 1 – 5 March 2027
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Amsterdam 1 – 5 March 2027
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Manama 7 – 11 March 2027
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Istanbul 8 – 12 March 2027
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Berlin 15 – 19 March 2027
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Singapore 22 – 26 March 2027
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Zoom 29 March – 2 April 2027
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Vienna 29 March – 2 April 2027
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Bali 4 – 8 April 2027
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Rome 5 – 9 April 2027
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Dubai 12 – 16 April 2027
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Cape town 18 – 22 April 2027
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Madrid 19 – 23 April 2027
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Tokyo 26 – 30 April 2027
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Accra 2 – 6 May 2027
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Milan 3 – 7 May 2027
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Manama 9 – 13 May 2027
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Seoul 10 – 14 May 2027
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Riyadh 16 – 20 May 2027
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Abu Dhabi 17 – 21 May 2027
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Vienna 24 – 28 May 2027
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Abu Dhabi 24 – 28 May 2027
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Cairo 31 May – 4 June 2027
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Porto 31 May – 4 June 2027
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Dubai 7 – 11 June 2027
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Rome 7 – 11 June 2027
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Dubai 14 – 18 June 2027
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Phuket 20 – 24 June 2027
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Toronto 27 June – 1 July 2027
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Sharm El-Sheikh 5 – 9 July 2027
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Prague 5 – 9 July 2027
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Kuala Lumpur 12 – 16 July 2027
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Baku 12 – 16 July 2027
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Lisbon 19 – 23 July 2027
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Frankfurt 26 – 30 July 2027
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Langkawi 1 – 5 August 2027
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Nairobi 8 – 12 August 2027
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Barcelona 9 – 13 August 2027
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Chicago 15 – 19 August 2027
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San Diego 23 – 27 August 2027
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Jakarta 30 August – 3 September 2027
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Abu Dhabi 6 – 10 September 2027
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London 13 – 17 September 2027
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Muscat 19 – 23 September 2027
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Marbella 26 – 30 September 2027
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Tashkent 3 – 7 October 2027
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London 4 – 8 October 2027
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Al Jubail 10 – 14 October 2027
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Casablanca 11 – 15 October 2027
| Image | Location | Dates | Duration | Mode | Price | Actions |
|---|---|---|---|---|---|---|
|
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Bangkok |
Week 04, 2027 31 January – 4 February 2027 |
5 Days | Onsite | €6,000 | |
|
|
London |
Week 05, 2027 1 – 5 February 2027 |
5 Days | Onsite | €5,700 | |
|
|
Milan |
Week 06, 2027 8 – 12 February 2027 |
5 Days | Onsite | €5,700 | |
|
|
Barcelona |
Week 06, 2027 8 – 12 February 2027 |
5 Days | Onsite | €5,700 | |
|
|
Trabzon |
Week 06, 2027 14 – 18 February 2027 |
5 Days | Onsite | €6,800 | |
|
|
Cairo |
Week 08, 2027 22 – 26 February 2027 |
5 Days | Onsite | €4,100 | |
|
|
Amsterdam |
Week 08, 2027 22 – 26 February 2027 |
5 Days | Onsite | €5,700 | |
|
|
Kuala Lumpur |
Week 09, 2027 1 – 5 March 2027 |
5 Days | Onsite | €5,200 | |
|
|
Amsterdam |
Week 09, 2027 1 – 5 March 2027 |
5 Days | Onsite | €5,700 | |
|
|
Manama |
Week 09, 2027 7 – 11 March 2027 |
5 Days | Onsite | €4,700 | |
|
|
Istanbul |
Week 10, 2027 8 – 12 March 2027 |
5 Days | Onsite | €4,500 | |
|
|
Berlin |
Week 11, 2027 15 – 19 March 2027 |
5 Days | Onsite | €5,700 | |
|
|
Singapore |
Week 12, 2027 22 – 26 March 2027 |
5 Days | Onsite | €5,700 | |
|
|
Zoom |
Week 13, 2027 29 March – 2 April 2027 |
5 Days | Online | €1,500 | |
|
|
Vienna |
Week 13, 2027 29 March – 2 April 2027 |
5 Days | Onsite | €5,700 | |
|
|
Bali |
Week 13, 2027 4 – 8 April 2027 |
5 Days | Onsite | €5,700 | |
|
|
Rome |
Week 14, 2027 5 – 9 April 2027 |
5 Days | Onsite | €5,700 | |
|
|
Dubai |
Week 15, 2027 12 – 16 April 2027 |
5 Days | Onsite | €4,500 | |
|
|
Cape town |
Week 15, 2027 18 – 22 April 2027 |
5 Days | Onsite | €4,500 | |
|
|
Madrid |
Week 16, 2027 19 – 23 April 2027 |
5 Days | Onsite | €5,700 |
Frequently asked questions
What does this course cover?
OverviewThis five-day AI professional programme in machine learning, NLP and AI governance is a practical tour of how AI models are actually built, from a spreadsheet of raw data to a working text classifier. Participants work in guided Python notebooks using scikit-learn, PyTorch and Hugging Face libraries, and carry one realistic customer-feedback datas…
Are training dates available?
Yes. Available dates and destinations are listed in the course dates section on this page.
How can I register?
Choose an available date on this page and complete the registration form, or send a programme enquiry.
Can I download the course brochure?
Yes. Use the brochure download link provided on this page.
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