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Hi there, I'm Sayed Mehedi Azim 👋

MehadiAzim



I am a Computer Science graduate, currently working as a Machine Learning Engineer at Apurba Technologies. I am experienced in creating advanced analytics strategies using data & intelligent machine learning algorithms with creative interfaces.

Throughout my student life, I have worked on various projects and research work. I prefer to solve real-life problems in our daily life. Regardless of the way that Bioinformatics intrigues me, my research interest lies in various fields which are Image processing, Algorithm design, and Human-centered computing.

In my leisure time, I write poetry and short stories for encircling the time. My favorite kinds of music usually revolve around rocks and melodies. I watch a handful of movies, biographies attract me the most.

📫 Reach me out!

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Reseach Interest

  • Computational biology
  • Machine Learning
  • Deep Learning
  • Image Processing
  • Human centered computing
  • Algorithms


📕 PUBLICATIONS

Journal Publications

Conference Publication



📕 Ongoing Research

  • Sayed Mehedi Azim, Sajid Ahmed, Swakkhar Shatabda, Abdollah Iman Dehzangi. Antimicrobial Peptides Prediction Using Multi-head Convolutional Neural Network. Developed a machine learning tool to accurately identify bacteriocins. Built multi-head CNN using TensorFlow.

  • Sayed Mehedi Azim, Swakkhar Shatabda. PIR-Deep: A Tool for Proinflammatory Peptides Prediction from Image Representation of features using Hybrid Deep Learning Model. In this research, a hybrid model is introduced, which uses CNN and LSTM for predicting proinflammatory peptides from image representation of peptide sequences. Images were created from Binary profile features using SuperTML.

  • Sayed Mehedi Azim, Mazharul Islam Leon, Noor Hossain Sabab, Swakkhar Shatabda. White Blood Cell Sub-type Classification Using Deep Ensemble Model. In this research, a deep ensemble learning method is introduced, which uses 5 different neural network models: ResNet-18, ResNet-34, ResNet-50, Densenet121, and Alexnet for identification of four types of WBC (neutrophil,eosinophil,lymphocyte and monocyte)

Languages and Tools:




📈 GitHub Stats


MehediAzim

Sayed Mehedi Azim's Projects

biotools icon biotools

A list of useful bioinformatics resources

deepamp icon deepamp

A Convolutional Neural Network based tool for predicting protein AMPylation sites from binary profile representation

industry-machine-learning icon industry-machine-learning

A curated list of applied machine learning and data science notebooks and libraries across different industries (by @firmai)

keract icon keract

Activation Maps (Layers Outputs) and Gradients in Keras.

monk_v1 icon monk_v1

Monk is a low code Deep Learning tool and a unified wrapper for Computer Vision.

oric-ens icon oric-ens

A Sequence-Based Ensemble Classifier for Predicting Origin of Replication in S. cerevisiae and S. pombe

sweetviz icon sweetviz

Visualize and compare datasets, target values and associations, with one line of code.

thesemicolon icon thesemicolon

This repository contains Ipython notebooks and datasets for the data analytics youtube tutorials on The Semicolon.

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