Coursera | NVIDIA: Prompt Engineering And Data Analysis

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Coursera | NVIDIA: Prompt Engineering And Data Analysis (Size: 379.41 MB)
  01-Foundations_Of_Prompt_Engineering
  00.Support - Onehack.Us.txt 94 B
  01-welcome_to_the_course_instructions.html 11.2 KB
  02-overview_of_foundations_of_prompt_engineering_instructions.html 2.77 KB
  03-prompt_engineering.mp4 23.48 MB
  04-fundamentals_of_prompt_design.mp4 18.71 MB
  05-techniques_for_effective_prompts.mp4 19.85 MB
  06-prompt_efficient_finetuning_technique.mp4 26 MB
  07-prompt_learning_p_tuning.mp4 19.81 MB
  08-introduction_to_nvidia_nemo.mp4 24.08 MB
  09-prompt_engineering_demo_with_an_llm.mp4 22.17 MB
  10-understanding_rag_architecture_of_llm.mp4 28.93 MB
  02-Data_Analysis_And_Visualization
  01-overview_of_data_analysis_and_visualization_instructions.html 2.74 KB
  02-techniques_of_text_data_analysis.mp4 33.27 MB
  03-text_data_visualization_demo.mp4 49.6 MB
  04-types_of_plot_and_its_importance.mp4 37.28 MB
  05-data_visualization_for_structured_data_demo.mp4 40.03 MB
  06-accelerated_data_analysis_workflow_with_cudf_and_dask_cudf.mp4 31.57 MB
  07-exam_tips_data_visiualization_techniques_for_text_data.mp4 4.62 MB
  08-key_takeaways_of_the_course_instructions.html 2.4 KB
  09-course_conclusion_instructions.html 2.13 KB
  Support - Onehack.Us.txt 94 B

Description



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Coursera - NVIDIA: Prompt Engineering and Data Analysis

Course details

NVIDIA: Prompt Engineering and Data Analysis is the fifth course of the Exam Prep (NCA-GENL): NVIDIA-Certified Generative AI LLMs - Associate Specialization. This course equips learners with a solid foundation in prompt engineering, data analysis, and visualization techniques for optimizing Large Language Models (LLMs). The course covers essential concepts such as prompt engineering fundamentals, effective prompt creation, and P-tuning for enhanced LLM performance. It also delves into techniques for analyzing text data, different plot types, and their role in effective data visualization. Learners will gain hands-on experience with tools like NVIDIA NeMo for prompt engineering and cuDF and Dask cuDF for accelerated data analysis workflows. The course is divided into two modules with Lessons and Video Lectures. Learners will engage in approximately 3:00-3:30 hours of video content, covering both theoretical concepts and practical applications. Each module is paired with quizzes to assess understanding and reinforce learning. Module 1: Foundations of Prompt Engineering Module 2: Data Analysis and Visualization By the end of this course, learners will be able to: - Understand prompt engineering and its role in LLM optimization. - Apply P-tuning and RAG architecture for improved model performance. - Utilize data analysis and visualization techniques for effective NLP tasks. This course is ideal for learners interested in enhancing their skills in prompt engineering and data analysis for LLM optimization, with a focus on practical implementation.

What you'll learn
- Understand prompt engineering and its role in LLM optimization.
- Apply P-tuning and RAG architecture for improved model performance.
- Utilize data analysis and visualization techniques for effective NLP tasks.

There are 2 modules in this course

NVIDIA: Prompt Engineering and Data Analysis is the fifth course of the Exam Prep (NCA-GENL): NVIDIA-Certified Generative AI LLMs - Associate Specialization. This course equips learners with a solid foundation in prompt engineering, data analysis, and visualization techniques for optimizing Large Language Models (LLMs).

The course covers essential concepts such as prompt engineering fundamentals, effective prompt creation, and P-tuning for enhanced LLM performance. It also delves into techniques for analyzing text data, different plot types, and their role in effective data visualization. Learners will gain hands-on experience with tools like NVIDIA NeMo for prompt engineering and cuDF and Dask cuDF for accelerated data analysis workflows.

The course is divided into two modules with Lessons and Video Lectures. Learners will engage in approximately 3:00-3:30 hours of video content, covering both theoretical concepts and practical applications. Each module is paired with quizzes to assess understanding and reinforce learning.

Module 1: Foundations of Prompt Engineering
Module 2: Data Analysis and Visualization

By the end of this course, learners will be able to:

- Understand prompt engineering and its role in LLM optimization.
- Apply P-tuning and RAG architecture for improved model performance.
- Utilize data analysis and visualization techniques for effective NLP tasks.

This course is ideal for learners interested in enhancing their skills in prompt engineering and data analysis for LLM optimization, with a focus on practical implementation.

General Details:
Duration: 1h 9m
Updated: 03/2025
Language: English
Source: https://www.coursera.org/learn/nvidia-prompt-engineering-and-data-analysis
Instructor: https://www.whizlabs.com/

MP4 | Video: AVC, 1920x108p | Audio: AAC, 44.100 KHz, 2 Ch