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KHDA

Artificial Intelligence and Applied Gen AI Certification in Bahrain

90 hours of Applied Gen AI training program

Globally recognised industry-standard AI certification

Neural networks expertise using Automation Sandboxes

Expert instruction and real-world capstone projects

Flexible learning options with easy instalments

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3245 EnrolledEnrolled Learners
GoogleGoogle4.8/5
3245 EnrolledEnrolled Learners

Overview

What will you learn from us:

  • Master Python, Keras, and TensorFlow to develop advanced deep learning models
  • Build real-world applications with natural language processing, including chatbots
  • Implement reinforcement learning techniques such as Q-learning and policy optimization
  • Develop cutting-edge Generative AI projects using GANs, Transformers, and diffusion models
  • Apply AI solutions to business scenarios with tools like Power BI and Flask
  • Earn the Artificial Intelligence and Applied Gen AI Certification to boost your career prospects

Upcoming sessions

Curriculum

1

Python syntax, variables, data types

2

Conditional statements and loops

3

Functions and lambda functions

4

Lists, tuples, dictionaries, sets

5

Practice: Automate report filtering

6

Jupyter/Colab usage

7

NumPy arrays, indexing, reshaping

8

Vectorized operations

9

Use Case: Matrix operations for logistics

10

Load, clean, and merge data

11

Handling missing values

12

Filtering, slicing, groupby operations

13

Project: Merge Excel reports across departments

14

Mean, median, variance, std deviation

15

Skewness and kurtosis

16

Probability rules and distributions (normal, binomial)

17

Domain examples: Retail and HR

18

Central Limit Theorem

19

Confidence intervals

20

t-tests, chi-square, ANOVA

21

Correlation vs causation

22

Use Case: A/B testing for ecommerce

23

Histograms, barplots, boxplots

24

Heatmaps and correlation plots

25

Seaborn styling

26

Mini Project: Visualize retail sales

27

Feature engineering: scaling, encoding

28

Binning, outlier treatment

29

Practice: EDA on sales/finance dataset

1

Supervised vs unsupervised ML

2

ML workflow: split, train, evaluate

3

Metrics: accuracy, precision, recall, F1, ROC

4

Use Case: HR attrition model

5

Salary prediction using linear regression

6

Attrition classification with logistic regression

7

Confusion matrix, coefficients, ROC-AUC

8

Decision tree construction

9

Random forest ensemble

10

K-Nearest Neighbors (KNN)

11

GridSearchCV tuning

12

Use Case: Loan eligibility prediction

13

K-means clustering

14

Hierarchical clustering

15

PCA for feature reduction

16

Use Case: Customer segmentation

17

Connect CSV, Excel, and Python outputs

18

Power Query transformations

19

Visuals: cards, charts, slicers

20

Case: HR Dashboard (attrition analysis)

21

Data modeling

22

DAX calculated columns and measures

23

Multi-page dashboards

24

Case: Finance dashboard with forecasting

25

Export ML results to Power BI

26

Import predictions

27

Build ML-powered dashboards

28

Use Case: Telecom churn dashboard

1

Data ingestion and cleaning with Pandas

2

Statistical summary and EDA

3

Visual story using Matplotlib/Seaborn

4

ML models: Linear/Logistic/Tree/KNN

5

Dashboard in Power BI integrating Python model outputs

6

Sales performance predictor

7

HR attrition analyzer

1

Why deep learning?

2

ANN structure, activation functions

3

Feedforward and backpropagation

4

Build ANN using Keras

5

TensorFlow 2.x and Keras API

6

Loss functions and optimizers

7

Overfitting and underfitting

8

Train a churn model on tabular data

9

NLP use cases: chatbots, sentiment, classification

10

Preprocessing: tokenization, stop words, lemmatization

11

Vectorization: Bag of Words, TF-IDF

12

Hands-on: Sentiment analysis

13

Logistic regression and Naive Bayes

14

Word embeddings introduction

15

Build: spam or feedback classifier

16

CNN layers: filters, pooling, convolution

17

Applications: image classification, document scan

18

Hands-on: Use pre-built CNN (transfer learning)

19

Save/load models (Pickle, Joblib, TF)

20

Create Flask/FastAPI REST APIs

21

Deploy a model (e.g., churn or sentiment)

22

Agent, environment, state, action, reward

23

Exploration vs exploitation

24

Q-learning (tabular)

25

Hands-on: Grid-world agent simulation

1

Self-attention and multi-head attention

2

BERT vs GPT

3

Positional encoding

4

Hands-on: Text generation with transformer

5

Generator vs Discriminator

6

DCGAN, CycleGAN, StyleGAN

7

Hands-on: Synthetic image generation

8

Denoising Diffusion Probabilistic Models (DDPM)

9

Diffusion vs GANs

10

Tools: Stable Diffusion, DALL·E

11

Hands-on: Generate text-to-image outputs

12

GPT, Claude, Falcon, Mistral overview

13

Prompt engineering

14

Fine-tuning domain-specific LLMs

15

Hands-on: Legal/Medical chatbot

16

LangChain architecture

17

Vector databases (FAISS, Pinecone)

18

Build RAG pipeline

19

Hands-on: Doc-aware Q&A chatbot

20

Vision-Language Models: GPT-4V, CLIP, BLIP

21

Text-to-image/video/audio generation

22

Hands-on: Generate media from prompts

23

Content generation pipelines

24

Brand asset generation

25

Tools: Sora, Runway, DALL·E

1

Deep Q-Networks (DQN)

2

Policy Gradients

3

PPO (Proximal Policy Optimization)

4

Hands-on: Train an autonomous agent

5

Multi-agent collaboration

6

LangChain dynamic decision agents

7

Build a simple autonomous assistant

8

Task decomposition & planning

9

Reflex vs learning agents

10

CrewAI orchestration

11

Hands-on: Multi-agent research + writing task

12

LangChain tools: Google Search, Wolfram, Zapier

13

Agent memory: vector, long-term, summary

14

Context retention strategies

15

Hands-on: Web-aware document chatbot

16

OpenAI, Claude function calling

17

ReAct prompting strategy

18

Toolformer concept

19

Hands-on: Reasoning assistant with tools & APIs

20

Orchestrating prompt → tools → output

21

Guardrails, observability

22

Evaluation metrics: latency, task completion

23

Hands-on: AI assistant to summarize meetings, update CRM, draft reports

24

Ethics, safety, bias, hallucinations

25

Gradio, Streamlit, Hugging Face Spaces

26

Hands-on: Host your GenAI app publicly

1

Data preprocessing + supervised ML model

2

LLM-based Q&A or text generation module

3

Image/audio generation (optional enhancement)

4

LangChain-based agentic workflow

5

Deployment via Flask + Gradio/Streamlit

6

Evaluation report: accuracy, latency, ethical handling

7

AI Assistant for HR Analytics

8

Legal or Medical Document Analyzer

9

Brand Content Generator for Marketing

10

Autonomous CRM Update & Reporting Agent

Meet your Trainer

Our Trainers

Learners Point has a reputation for high-quality training that makes a difference in people's lives. We undertake a practical and innovative approach to working closely with businesses to improve their workforce. Our expertise is wide-ranging with ample support from our expert trainers who are globally recognized and hold a diverse set of experiences in their field of expertise. We are proud of our instructors who take ownership of our distinctive and comprehensive training methodologies, help our students imbibe those with ease, and accomplish gracefully.

We at Learners Point believe in encouraging our students to embark upon a journey of lifelong learning and self-development, with the aid of our comprehensive and distinctive courses tailored to current market trends. The manifestation of our career-oriented approach is what we assure through a pleasant professional enriched environment with cutting-edge technology, and an outstanding while highly acknowledged training staff that uses up-to-date methodologies and quality course material. With our aim to mold professionals to be future leaders, our industry expert trainers provide the best in town mentorship to our students while endowing them with the thirst for knowledge and inspiring them to strive for professional and human excellence.

Our Trainers

Learning Outcomes

Upon finishing the training, you will:

  • 1

    Master deep learning with TensorFlow, Keras, and Python for advanced AI

  • 2

    Create NLP models in Python for tasks like sentiment analysis

  • 3

    Build and refine Generative AI models using GANs and Transformers

  • 4

    Apply reinforcement learning for complex decision-making

  • 5

    Develop AI business solutions using Power BI and Flask integration

  • 6

    Gain hands-on experience with real-world projects like chatbots and predictive models

  • objective-image

    Ready to get started?

  • KHDA Certificate

    Earn a KHDA attested Course Certificate. The Knowledge and Human Development Authority (KHDA) is the educational quality assurance and regulatory authority of the Government of Dubai, United Arab Emirates.

    Certifcate-Image0

    Learners Point Certificate

    Earn a Course Completion Certificate, an official Learners Point credential that confirms that you have successfully completed a course with us.

    Certifcate-Image1

    Overall ratings by our students

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    Frequently asked questions

    The Artificial Intelligence and Applied Gen AI Certification equips you with skills for advanced AI applications, such as deep learning, NLP, and Generative AI. This course helps you develop practical AI solutions and enhances your career by confirming expertise in a high-demand field like AI. The certification provides credibility to excel in AI-driven industries worldwide, including Dubai and the UAE.

    The Artificial Intelligence and Applied Gen AI Certification will expand your skill set by teaching you advanced techniques such as deep learning with TensorFlow and Keras, as well as Generative AI through GANs and Transformers. You will also gain practical experience in reinforcement learning and NLP, enabling you to develop more sophisticated AI models and applications, further boosting your data science skills and preparing you for senior leadership roles in AI.

    The certification will provide you with the practical skills and knowledge needed to implement AI-based solutions in your business. You will be able to develop AI models, design NLP-based applications such as chatbots, and create Generative AI projects. Using tools like TensorFlow, Keras, and GANs, you can develop innovative solutions to improve customer experiences and operational efficiency, helping you stay competitive in the market.

    The certification covers a wide range of AI technologies, including deep learning with TensorFlow and Keras, natural language processing (NLP) for sentiment analysis, and Generative AI techniques such as GANs and Transformers. Participants will also learn reinforcement learning, which enables the development of intelligent systems that can learn and make decisions.

    During the certification, you will work on practical projects involving the creation of chatbots with AI, sentiment analysis software, and prediction models. You will also learn how to build Generative AI models and implement reinforcement learning methods to tackle real-world scenarios, enabling you to develop a practical portfolio to showcase your skills.

    The certificate is suitable for individuals with a basic understanding of programming and general AI principles. Although it covers advanced topics such as deep learning, NLP, and Generative AI, the course is delivered in a structured, practical manner, making it perfect for professionals with some background in data science, software development, or related fields.

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