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Dr Venugopala Rao Manneni
Dr Venugopala Rao Manneni

Dr Venugopala Rao Manneni

Learner, Practitioner & Teacher

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Month: March 2023

Exploring AutoML Libraries in Python: A No-Code Revolution for Machine Learning

March 28, 2023April 8, 2026
Venugopal Manneni
data science related

Remember when building a machine learning (ML) model meant weeks of manual tweaking? Those days are fading, thanks to the rise of AutoML — a game-changer automating everything from preprocessing to hyperparameter tuning, and even ensembling. Here’s your guide to

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The Evolution of Analytics: From Hard-Coded Scripts to Conversational AI

March 15, 2023April 8, 2026
Venugopal Manneni
Uncategorized

In the ever-evolving landscape of analytics, the way we conduct data analysis has transformed dramatically over the years. As technology progresses, so does the way we interact with analytical tools, making them more accessible, efficient, and intelligent. This transformation can

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Title: “Revolutionizing Practice Management with Interactive Dashboards on the Medeva Platform”

March 13, 2023April 13, 2023
Venugopal Manneni
Use cases

Need: As healthcare providers, we are always striving to provide the best possible care to our patients. One critical aspect of this is efficient practice management, which involves streamlining data entry and analysis, monitoring patient progress, and making data-driven decisions.

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Exploring Methods for Computing Global Feature Importance in Machine Learning Models

March 3, 2023April 3, 2023
Venugopal Manneni
Explainable AI

There are various methods to compute the global importance of features in machine learning models. Here are some of the most common methods: Permutation Importance: This method measures the impact of shuffling a feature on the model’s performance. It involves

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Exploring the Different Methods for Achieving Explainable AI (XAI)

March 3, 2023April 3, 2023
Venugopal Manneni
Explainable AI

Explainable AI (XAI) is becoming increasingly important in today’s world of machine learning and artificial intelligence. As these technologies are increasingly used to make critical decisions, it is essential that they are transparent and understandable to ensure their decisions are

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Explainable AI Methods

March 3, 2023April 3, 2023
Venugopal Manneni
Explainable AI

Explainable AI (XAI) refers to a set of techniques and approaches used to help humans understand how machine learning and artificial intelligence systems make decisions. There are two main types of XAI methods: model-agnostic and model-specific. In this blog post,

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About Me

 

A doctor in statistics from Osmania University, Venugopala Rao Manneni is an experienced data analyst who has over 15 years of work experience in a diverse areas of verticals such as manufacturing, service, media, telecom, retail, pharma and education. Prior to Juxt-Smart Mandate, he has worked with reputed organizations like TNS India (Kantar, WPP) and NFO MBL and served clients across UK, France and Asia Pacific region… read more

Recent Post

  • Unlocking the Future: How Multiagent Systems Mirror Human Intelligence Using Advanced AI Concepts
  • Generative AI Glossary
  • Unraveling “What” and “Why” in Data Science: Phases and Their Importance
  • The Need for Creating Mind Maps for Quick Understanding of Data
  • “Unpacking the Roles of LLMs, Retrieval-Augmented Generation, and Agents in Modern AI”

Stay in Touch

 

venugopal.manneni@gmail.com

www.linkedin.com/in/statsvenu

twitter.com/statsvenu

github.com/drstatsvenu

Dr Venugopala Rao Manneni
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