Course Information

  • Sessions 1 day
  • Duration 7.5 hrs
  • Level Beginner
  • Assessment NA

Venue

Kuala Lumpur: G-3A-02, Suite Pejabat Korporat, KL Gateway, No 2, Jalan kerinchi, Gerbang kernichi Lestari, 59200 Kuala Lumpur, Malaysia
Penang: Jalan Sungai Dua, 11700 Penang, Malaysia.

Course Brochure

Certification

  • Certificate of Completion from Tertiary Courses - Upon meeting at least 75% attendance and passing the assessment(s), participants will receive a Certificate of Completion from Tertiary Courses.

Fine Tuning Open Source LLM

Course Code: C922
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What's This Course About

In the era of advanced artificial intelligence, the ability to develop and fine-tune Generative AI (GenAI) models is critical for building high-performance, domain-specific solutions. This course, Fine Tuning Open Source LLM, equips learners with the practical skills and technical knowledge to design, optimize, and evaluate modern AI models using cloud-based tools and frameworks.

Learners will begin by exploring techniques for data ingestion and transformation, including the use of synthetic data to enhance model performance and address data limitations. The course then focuses on building efficient data pipelines and feature engineering workflows, applying optimization strategies to improve model training and scalability.

Participants will gain hands-on experience in fine-tuning pre-trained multi-modal models, leveraging advanced training approaches, loss functions, and parameter optimization techniques to adapt models for specific use cases. Emphasis is placed on improving model accuracy, efficiency, and robustness in real-world deployment scenarios.

In addition, the course addresses critical considerations in modern AI development, including bias detection, explainability, and alignment with performance benchmarks. Learners will evaluate AI solutions to ensure they are reliable, ethical, and aligned with organizational and regulatory expectations.

By the end of the course, learners will be able to design end-to-end GenAI workflows—from data preparation to model fine-tuning and evaluation—enabling them to develop scalable, responsible, and high-performing AI solutions for a wide range of applications.

This course is suitable for data professionals, AI practitioners, and developers seeking to deepen their expertise in Generative AI model development, optimization, and fine-tuning techniques.

Course Fee

MYR1,100.00

Course Date

Course Time

Additional Note

Please bring your own laptop for hands-on training. If you don't have laptop, we can provide spare laptop for training use.

Disclaimer: The course dates displayed on our website are tentative and subject to trainer availability. We will confirm the final date after checking with the trainer. You are also welcome to email us your preferred date at sales@tertiarycourses.com.my, and we will do our best to coordinate with the trainer's schedule.

Post-Course Support

  • We may provide consultation related to the subject matter after the course.
  • Please email your queries to sales@tertiarycourses.com.my and we will forward your queries to the subject matter experts and get back to you as soon as possible.

Cancellation & Reschedule Policy

  • We reserve the right to cancel or re-schedule the course due to unforeseen circumstances. If the course is cancelled, we will refund 100% to participants.
  • Note: the venue of the training is subject to changes due to class size and availability of the classroom. The minimum class size to start a class is 3 Pax.

Course Details

Course Details

What You'll Learn

Topic 1: Data Engineering

Topic 2: Exploratory Data Analysis

Topic 3: Modelling

Topic 4: Machine Learning Implementation and Operations

Course Info

Minimum Entry Requirement

Knowledge and Skills

  • Able to operate using computer functions
  • Minimum 3 GCE ‘O’ Levels Passes including English or WPL Level 5 (Average of Reading, Listening, Speaking & Writing Scores)

Attitude

  • Positive Learning Attitude
  • Enthusiastic Learner

Experience

  • Minimum of 1 year of working experience.

Target Age Group: 18-65 years old

Minimum Software/Hardware Requirement

Software:

Hardware: Window or Mac Laptops

Job Roles

Job Roles

  • Machine Learning Engineer
  • Data Scientist
  • AI Engineer
  • Data Engineer
  • Cloud Machine Learning Architect
  • ML Operations Engineer
  • AI/ML Consultant
  • Applied Scientist
  • Deep Learning Engineer
  • Cloud Solutions Architect
  • Data Analyst
  • DevOps Engineer (ML-focused)
  • Technical Product Manager (AI/ML)
  • AI Research Engineer
  • Software Engineer (ML Integration)
  • Automation Engineer (AI/ML)

Trainers

Trainers

Saeid is co-founder of Skymics Sdn Bhd. He has 8 years of experience in the field of IoT (Internet of Things) and Information Technology. He is a certified IBM IoT Practitioner and instructor, and a Certified Citizen Data Scientist Train-The-Trainer. He has been co-inventor of 3 inventions during the last 4 years.

Review

Customer Reviews (5)

Fantastic experience Review by Course Participant/Trainee
1. Do you find the course meet your expectation?
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I found the course extremely useful and relevant to my job. Highly recommend it to others. (Posted on 26/05/2026)
Highly recommended Review by Course Participant/Trainee
1. Do you find the course meet your expectation?
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Well organised course with clear objectives. The step-by-step approach made it easy to follow. (Posted on 06/02/2026)
Hands-on and practical Review by Course Participant/Trainee
1. Do you find the course meet your expectation?
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Well organised course with clear objectives. The step-by-step approach made it easy to follow. (Posted on 14/06/2025)
Very informative Review by Course Participant/Trainee
1. Do you find the course meet your expectation?
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I found the course extremely useful and relevant to my job. Highly recommend it to others. (Posted on 12/04/2025)
Engaging trainer Review by Course Participant/Trainee
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3. How do you find the training environment
The trainer is an expert in the subject and shared many practical insights from real projects. (Posted on 02/12/2024)

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