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Avatar of Ranganatha G V.
Avatar of Ranganatha G V.
Lead Software Engineer @EPAM Systems India Pvt. Ltd
2023 ~ 現在
Engineering Manager, App Team Lead, Senior iOS Developer
一個月內
. Responsibilities for project architecture, complete development and delivery of the projects. As an iPhone developer, I worked on projects such as, Moving Tigers, KnowItNow, Socialite and Travelmob. MarchDecember 2011 Mobile Developer Strapp business solutions Being a Mobile developer, I worked as SPOC to deliver iOS Universal applications which have videos of Appuseries for kids. FebruaryFebruary 2011 Mobile Application Developer Divum Corporate Services Pvt Ltd Started my career with Divum, worked & delivered iOS applications while learning Objective-C Skills Languages Swift SwiftUI Objective-C Flutter (Basics) Dev Tools/Frameworks Xcode, Instruments, Visual S...
Swift/iOS
Objective-C
Xcode and Instruments environments
就職中
正在積極求職中
全職 / 對遠端工作有興趣
10 到 15 年
AMC Engineering College, Bengaluru
Information Science & Egineering
Avatar of the user.
Avatar of the user.
Lead Software Developer @Persistent Systems
2022 ~ 現在
兩個月內
java
SQL
就職中
正在積極求職中
全職 / 對遠端工作有興趣
4 到 6 年
VIT-Vellore
Computer Science
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Avatar of the user.
Executive (HOD) @SUJÁN The Serai, Jaisalmer
2023 ~ 現在
DUTY MANAGER
兩個月內
Communication
OPERA
Micros POS
就職中
正在積極求職中
全職 / 暫不考慮遠端工作
4 到 6 年
Frankfinn institute of Chandigarh
Certificate of Hospitality and Management, Customer
Avatar of Devraj Kumar.
Avatar of Devraj Kumar.
Staff Engineer @NextGen Healthcare India
2019 ~ 現在
Senior Software Developer
三個月內
Delivered high-quality, efficient software solutions by adeptly employing a broad range of tools and frameworks, showcasing expertise in software engineering and project execution. Software Engineer • KPIT Technologies Ltd MayApril 2016 • Spearheaded the enhancement of the CoDeg tool by leveraging technologies such as LaTeX, MKS, Total Commander, SQL, and C#. • Instrumental in devising robust failsafe specifications and effectively resolving critical bug issues. Software Engineer • GRASKO SOLUTIONS PRIVATE LIMITED JanuaryApril 2014 • Spearheaded full-stack development, expertly authoring SQL stored procedures for robust data handling and manipulation. • Leveraged C# ADO.Net for efficient UI binding
C#.NET development
PL/SQL
LINQ
就職中
正在積極求職中
全職 / 對遠端工作有興趣
10 到 15 年
North Maharastra University, Jalgaon, Maharastra
Computer Science & Engineering
Avatar of Akansha Deepak Tiwari.
Software Test Engineer
超過一年
Akansha Tiwari Software Test Engineer with 4+ years of experience in Functional and Automation testing. By incorporating Testing methodologies and processes, I have assisted many businesses in improving the user experience of their products and platforms. Software Test EngineerBhopal, IN tiwari.akankshadeepak@gmail.com Skills Tools Selenium Robot Framework BugZilla Jira DevTrack Domains Game Testing Telecom Education Language/Packages Javascript HTML MS-Office C, C++ Python Ke y Responsi bilities Analyzing the business and System requirements Analysis of change controls documents that come after requirement freezes Interacting with the Client’s
Software Testing
Functional Testing
Regression Testing
正在積極求職中
全職 / 對遠端工作有興趣
4 到 6 年
J.D College of Engineering Nagpur
B.E (Electronics & Telecommunication)
Avatar of the user.
Front End Lead
超過一年
.net
c#
webapi
正在積極求職中
全職 / 對遠端工作有興趣
10 到 15 年
PGP College of Engineering & Technology
Information Technology
Avatar of vikram gavli.
Avatar of vikram gavli.
software engineer @NeoSOFT Technologies (A CMMi Level 5 Organization)
2023 ~ 2023
Senior Software Engineer
一個月內
vikram gavli Mumbai, Maharashtra, Indiavikramgvl@gmail.com A systematic, organized, hardworking team player with an analytical bent of mind; reliable as a fully contributing, responsible & accountable member of task / project teams. Demonstrating technical proficiency in a high paced production environment & exercise judgment within defined procedures & practices to determine appropriate action.. Skills C# ASP.NET MVC5 API Development SQL Server Entity Framework Html, bootstrap, jquery Work Experience software engineer • NeoSOFT Technologies (A CMMi Level 5 Organization) JulyNovember 2023 | Mumbai Jewelry Shop Management System project is a web application which is developed in C
C# ASP.NET
API Development
SQL Server
就職中
目前會考慮了解新的機會
全職 / 暫不考慮遠端工作
6 到 10 年
NBWS High school
commerce
Avatar of Harshit Jamwal.
Avatar of Harshit Jamwal.
Consultant ll @EY
2023 ~ 現在
Consultant
兩個月內
SNMP OID classification records. Implemented a comprehensive Configuration Management Database (CMDB) health dashboard to monitor and analyze the status and performance of IT assets and configurations. Configured Health Inclusion rules for Required, Recommended, Staleness, Duplicate & Orphan to filter the CIs included in the dashboard. Worked on 3 C's in CMDB mean which are required to monitor the Health of CMDB data. Completeness - Used the recommended and required metrics to ensure that the Configuration Items (CIs) are populated with necessary data. Correctness - By checking the duplicates, orphans, and staleness metrics, made sure that the CMDB
ITSM
HRSD
ITOM
就職中
目前會考慮了解新的機會
全職 / 對遠端工作有興趣
4 到 6 年
Birla Institute of Technology and Science, Pilani
Computer Science
Avatar of GEETHU U N.
Avatar of GEETHU U N.
Web Developer @Self employed
2017 ~ 現在
Python Developer
三個月內
Web Developer with a comprehensive skill set encompassing the Django web framework and expertise in front-end technologies. Experienced in full-stack web development, with a strong ability to create robust, user-friendly web applications. " Work Experience Web Developer • Self employed SeptemberPresent GST Accountant • RJ associate SeptemberJune 2022 Education AVODHA EDUTECH PVT LTD Python DjangoDe Paul Institute of Science and Technology BCA- Bachelor of Computer ApplicationSkills python Django HTML5 CSS3, JavaScript Git & GitHub MySQL, PostgreSQL, Data Structures Python, C &C++ O C penV, Tkinter, API Tally Prime Languages English — Intermediate Hindi — Intermediate Malayalam — Native or Bilingual
python django
HTML5
CSS3
就職中
目前會考慮了解新的機會
全職 / 對遠端工作有興趣
4 到 6 年
AVODHA EDUTECH PVT LTD
Python Django
Avatar of Ashutosh Tiwari.
Avatar of Ashutosh Tiwari.
Management Trainee (FLM) @Genpact
2021 ~ 現在
Assistant manager
半年內
Ashutosh Tiwari US & UK Insurance Ghaziabad, Uttar Pradesh, India 9+ years' experience in the areas of Business Process Operations Management, handled P&C Insurance & Health Insurance segment for US and UK regions. Associated with Genpact as Management Trainee - Operations leading portfolios for US Fortune 100 company. • Strong domain expertise across P&C Insurance & Health Insurance for Personal & Commercial Lines, Underwriting, Claims and Surplus Lines. • Possess interpersonal and organizational skills with demonstrated abilities in Process Management, Operations Management, Team Management, People Management, Client Management, Transition Management, Project Management. • Skilled in managing teams to work in sync
Process Management
Operations Management
People Management
就職中
目前會考慮了解新的機會
全職 / 對遠端工作有興趣
6 到 10 年
Swami Vivekanand Subharti University
Finance & Marketing

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超過一年
AI & Embedded Systems Consultant @ Self Employed
Self Employed
2021 ~ 現在
Ahmedabad, Gujarat, India
專業背景
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machine learning
aws
Google cloud
Docker
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Deep Learning Engineer
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Pune, Maharashtra, India
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接案服務
學歷
學校
Charotar University of Science & Technology
主修科系
Electronics & Communication
列印

Kishan Gondaliya

Experienced embedded software engineer working on Embedded Systems and Deep Learning to enable vision and voice-based machine learning algorithms on low-power FPGA and edge embedded devices. ~8 years of experience consists in writing, debugging, and optimizing software/firmware for embedded devices.

+91 9409 24 93 94
[email protected]   Ahmedabad, Gujarat, India      

Skillset

Languages:

Frameworks:

Dev Tools:

HW Platform:

Cloud (GCP):

Cloud (AWS):

Other:


C, Python, C++

Tensorflow (TFlite, TFmicro), Keras, Caffe, Darknet

Anaconda, Git, Gerrit, Perforce, Pycharm, CVS, Jira, Confluence

Google Coral TPU, Lattice ECP5, U+, Crosslin-NX FPGA, Raspberry Pi, Intel Movidius, NVIDIA GPU

Compute Engine, App Engine, Vision API, Auto-ML, Container Registry, Kubernetes Engine

Sagemaker, DeepLens, Lambda, Rekognition API, Reko API custom labels

Docker, OpenCV, Machine Learning, Deep Learning, Computer Vision, Convolution Neural Nets (CNN), LSTM, Networking, Model Optimization, Quantization, Pruning, Linux Kernel, OpenWRT

Work Experience

Work Experience

AI & Embedded Systems Consultant

Self-Employed  •  February 2021 - Present

Working with companies to blend AI with embedded systems specifically to enable AI on edge devices, including the device ecosystem.

Staff Engineer

Softnautics  •  September 2016 - February 2021

  • Architectured a Dockerized ML training framework and led the team for bug-free releases
  • Led Machine Learning COE team and completed 9+ projects successfully based on edge devices and cloud services
  • Worked on different DL model architectures and customized them for small footprint edge FPGA devices with techniques like quantization and pruning
  • Worked on OpenWRT firmware customization for mobility solution, network utilization monitoring and controlling

Associate Engineer

Sibridge Technologies  •  May 2015 - August 2016

  • Worked as a developer in critical 32-bit Tensile core based audio processor firmware development
  • Implemented multi-radio feature for mesh networks in the Linux kernel and improved HWMP to get a 7% throughput increment
  • Contributed to several projects as an individual contributor

Projects

Omnivision Camera driver for OpenQ2500 platform and DL model integration

  • OpenQ2500 is a wearable SOC designed mainly for small devices like trackers, smart watches, smart eyewear etc.
  • Work involved camera driver development and fine-tuning the camera with parameters that can be changed from user space.
  • Later with a camera feed, DL model was developed to identify multiple custom objects based on wearable application of the client

Linux Driver for I2S on iMX8

  • Work involved developing an I2S driver to stream audio from/to the DSP core
  • Controlling parameters of of audio stream were controlled through I2C bus and part of driver work

Microchip WLSom1 WiFi support

  • Driver porting, specifically backporting, was done for Microchip's WLSOM1 target chip SAMA5D27 for OpenWRT operating system

802.11s mesh network for 802.11ac radios with multi-radio multi-channel support

  • The IEEE 802.11s Mesh standard has defined Hybrid Wireless Mesh Protocol (HWMP) as the default routing protocol and Airtime Link

    metric (ALM) as the default metric for path selection.

  • The project involves enhancing the existing HWMP routing protocol for more efficient working in different environmental conditions and considering other important wireless parameters other than ALM in link cost calculation for better path selection.

  • Add support for multiple Mesh Points with different channels MIMC (Multi Mesh Interface Multi Channel) for better n/w connectivity and performance by avoiding issues of interference due to the same channel in SISC (Single Mesh Interface Single Channel).

  • Define both user interfaces of command line and GUI for individual
    and central management of the Mesh network

  • All implementations are on the Linux-based open source code of 802.11s

  • Development includes understanding of mac80211, nl80211, and cfg80211 drivers as well as utilities like iw, iwconfig, ifconfig, and iwlist.

  • Integrate power-saving mechanism for multi-radio support in
    Linux kernel.

Audio processor firmware development for Tensilica-based DSP

  • This project was about the maintenance of voice processor firmware, which included bug fixing, feature enhancement, and functional testing.
  • The voice processor is based on a customized 32-bit Tensilica core running a single-threaded custom OS, which has various IO peripherals like I2C, PDM, I2S/PCM, SLIMBus etc

Dockerized ML training framework

  • Containerized Machine learning training framework by which users can create, train, debug and freeze the ML model
  • Architect whole framework from scratch and created plug and use components
  • Generated various docker images for the different training environments
  • Added generic base code component along with a detector which can support any object detection or classification model architecture
  • Enabled automated data augmentation, splitting, and performance matrix generation

Neural Network compiler development

  • Development/Enhancement of Neural network compiler tool written in Python for FPGA manufacturers
  • Tool code optimization for 2x speed of simulation
  • Dynamic fixed-point calculations implementation
  • Development of a part of a tool that handles debugging hardware through USB by reading and writing DRAM by doing bulk & control transfer
  • On top of the UMDF driver for windows and libusb for linux, wrapper library was developed.

Shoulder Surfing detection

  • Manually annotated OID v6 dataset of person class images with front and non-front looking classes
  • Automated class distribution and augmentation flow using python scripts
  • Customized SqeezeDet network architecture to fit into the small footprint of Lattice iCE40 FPGA
  • Developed C# windows GUI to communicate with FPGA through UART com port to display input images to the CNN engine and detection results

Intelligent parking slot allocation system

  • CNRPark-2 used as the base dataset
  • Used AWS rekognition custom label service at the POC stage
  • Automated pipeline on AWS to trigger training when a new dataset is added to the S3 bucket
  • Trained 2 different models due to available dataset, first to detect parking slots, second to detect if it is free or busy 
  • Generated dataset with augmentation operations like to fake weather conditions
  • Designed final model to accommodate both functionality and trained with custom dataset

Human Counting on low power FPGA

  • Developed human counting optimised model for FPGAs like Lattice ECP5, Crosslink-NX, Crosslink-NX Voice & Vision, iCE40
  • Customised training code based on SqueezeDet detector which can accommodate architectures like VGG, MobileNet V1 & V2, ResNet etc
  • Quantization and model pruning

Keyphrase detection

  • Develop a CNN that can recognize a keyword from its audio spectrum that runs on Lattice iCE40 FPGA.
  • Added support in NN compiler to generate filter binary to convert audio data into image like data
  • Audio data augmentation

Face Recognition

  • Developed face recognition model compatible with Lattice ECP5 FPGA

  • Cleaned VGGFace2 with the help of dlib to remove images that could confuse our network

  • The trained model with the VGGFace2 dataset and custom-added images to give a 128 feature map that can be used to recognize a person’s face

Analog gauge reader

  • Design a system for an industrial analog gauge reading
  • Synthetic dataset generation & augmentation for different gauges
  • Train model with Google AutoML and use TFLite model with Google Coral stick as POC
  • Design a custom VGG type model for speed and performance optimization with quantization techniques

Gesture Recognition

  • Lattice iCE40 FPGA with IR transmitter-based solution
  • Configured camera for enhanced IR sensitivity in RTL to mimic IR sensor-based input
  • Generated dataset by capturing actual images from the hardware itself for better accuracy and performance. Developed C# Windows app
  • Customized SqeezeDet network architecture to fit into the small footprint of Lattice iCE40 FPGA

AWS DeepLens

  • Deployed models based on Face analytics, clothing style detection, logo detection & scene detection
  • Developed lambda function for all the models for inference output processing
  • Developed ML IOT quiz based on pre-trained MobileNet SSD object detection model and node-red based service

POC Projects (Deep Learning)

  • Age & gender detection (Targeted advertisement)
  • Driver distraction alert
  • Face mask detection
  • Social distancing alert
  • Facial expression recognition

Education

Charotar University of Science & Technology

B.Tech (Electronics & Communication)  2011 – 2015

履歷
個人檔案

Kishan Gondaliya

Experienced embedded software engineer working on Embedded Systems and Deep Learning to enable vision and voice-based machine learning algorithms on low-power FPGA and edge embedded devices. ~8 years of experience consists in writing, debugging, and optimizing software/firmware for embedded devices.

+91 9409 24 93 94
[email protected]   Ahmedabad, Gujarat, India      

Skillset

Languages:

Frameworks:

Dev Tools:

HW Platform:

Cloud (GCP):

Cloud (AWS):

Other:


C, Python, C++

Tensorflow (TFlite, TFmicro), Keras, Caffe, Darknet

Anaconda, Git, Gerrit, Perforce, Pycharm, CVS, Jira, Confluence

Google Coral TPU, Lattice ECP5, U+, Crosslin-NX FPGA, Raspberry Pi, Intel Movidius, NVIDIA GPU

Compute Engine, App Engine, Vision API, Auto-ML, Container Registry, Kubernetes Engine

Sagemaker, DeepLens, Lambda, Rekognition API, Reko API custom labels

Docker, OpenCV, Machine Learning, Deep Learning, Computer Vision, Convolution Neural Nets (CNN), LSTM, Networking, Model Optimization, Quantization, Pruning, Linux Kernel, OpenWRT

Work Experience

Work Experience

AI & Embedded Systems Consultant

Self-Employed  •  February 2021 - Present

Working with companies to blend AI with embedded systems specifically to enable AI on edge devices, including the device ecosystem.

Staff Engineer

Softnautics  •  September 2016 - February 2021

  • Architectured a Dockerized ML training framework and led the team for bug-free releases
  • Led Machine Learning COE team and completed 9+ projects successfully based on edge devices and cloud services
  • Worked on different DL model architectures and customized them for small footprint edge FPGA devices with techniques like quantization and pruning
  • Worked on OpenWRT firmware customization for mobility solution, network utilization monitoring and controlling

Associate Engineer

Sibridge Technologies  •  May 2015 - August 2016

  • Worked as a developer in critical 32-bit Tensile core based audio processor firmware development
  • Implemented multi-radio feature for mesh networks in the Linux kernel and improved HWMP to get a 7% throughput increment
  • Contributed to several projects as an individual contributor

Projects

Omnivision Camera driver for OpenQ2500 platform and DL model integration

  • OpenQ2500 is a wearable SOC designed mainly for small devices like trackers, smart watches, smart eyewear etc.
  • Work involved camera driver development and fine-tuning the camera with parameters that can be changed from user space.
  • Later with a camera feed, DL model was developed to identify multiple custom objects based on wearable application of the client

Linux Driver for I2S on iMX8

  • Work involved developing an I2S driver to stream audio from/to the DSP core
  • Controlling parameters of of audio stream were controlled through I2C bus and part of driver work

Microchip WLSom1 WiFi support

  • Driver porting, specifically backporting, was done for Microchip's WLSOM1 target chip SAMA5D27 for OpenWRT operating system

802.11s mesh network for 802.11ac radios with multi-radio multi-channel support

  • The IEEE 802.11s Mesh standard has defined Hybrid Wireless Mesh Protocol (HWMP) as the default routing protocol and Airtime Link

    metric (ALM) as the default metric for path selection.

  • The project involves enhancing the existing HWMP routing protocol for more efficient working in different environmental conditions and considering other important wireless parameters other than ALM in link cost calculation for better path selection.

  • Add support for multiple Mesh Points with different channels MIMC (Multi Mesh Interface Multi Channel) for better n/w connectivity and performance by avoiding issues of interference due to the same channel in SISC (Single Mesh Interface Single Channel).

  • Define both user interfaces of command line and GUI for individual
    and central management of the Mesh network

  • All implementations are on the Linux-based open source code of 802.11s

  • Development includes understanding of mac80211, nl80211, and cfg80211 drivers as well as utilities like iw, iwconfig, ifconfig, and iwlist.

  • Integrate power-saving mechanism for multi-radio support in
    Linux kernel.

Audio processor firmware development for Tensilica-based DSP

  • This project was about the maintenance of voice processor firmware, which included bug fixing, feature enhancement, and functional testing.
  • The voice processor is based on a customized 32-bit Tensilica core running a single-threaded custom OS, which has various IO peripherals like I2C, PDM, I2S/PCM, SLIMBus etc

Dockerized ML training framework

  • Containerized Machine learning training framework by which users can create, train, debug and freeze the ML model
  • Architect whole framework from scratch and created plug and use components
  • Generated various docker images for the different training environments
  • Added generic base code component along with a detector which can support any object detection or classification model architecture
  • Enabled automated data augmentation, splitting, and performance matrix generation

Neural Network compiler development

  • Development/Enhancement of Neural network compiler tool written in Python for FPGA manufacturers
  • Tool code optimization for 2x speed of simulation
  • Dynamic fixed-point calculations implementation
  • Development of a part of a tool that handles debugging hardware through USB by reading and writing DRAM by doing bulk & control transfer
  • On top of the UMDF driver for windows and libusb for linux, wrapper library was developed.

Shoulder Surfing detection

  • Manually annotated OID v6 dataset of person class images with front and non-front looking classes
  • Automated class distribution and augmentation flow using python scripts
  • Customized SqeezeDet network architecture to fit into the small footprint of Lattice iCE40 FPGA
  • Developed C# windows GUI to communicate with FPGA through UART com port to display input images to the CNN engine and detection results

Intelligent parking slot allocation system

  • CNRPark-2 used as the base dataset
  • Used AWS rekognition custom label service at the POC stage
  • Automated pipeline on AWS to trigger training when a new dataset is added to the S3 bucket
  • Trained 2 different models due to available dataset, first to detect parking slots, second to detect if it is free or busy 
  • Generated dataset with augmentation operations like to fake weather conditions
  • Designed final model to accommodate both functionality and trained with custom dataset

Human Counting on low power FPGA

  • Developed human counting optimised model for FPGAs like Lattice ECP5, Crosslink-NX, Crosslink-NX Voice & Vision, iCE40
  • Customised training code based on SqueezeDet detector which can accommodate architectures like VGG, MobileNet V1 & V2, ResNet etc
  • Quantization and model pruning

Keyphrase detection

  • Develop a CNN that can recognize a keyword from its audio spectrum that runs on Lattice iCE40 FPGA.
  • Added support in NN compiler to generate filter binary to convert audio data into image like data
  • Audio data augmentation

Face Recognition

  • Developed face recognition model compatible with Lattice ECP5 FPGA

  • Cleaned VGGFace2 with the help of dlib to remove images that could confuse our network

  • The trained model with the VGGFace2 dataset and custom-added images to give a 128 feature map that can be used to recognize a person’s face

Analog gauge reader

  • Design a system for an industrial analog gauge reading
  • Synthetic dataset generation & augmentation for different gauges
  • Train model with Google AutoML and use TFLite model with Google Coral stick as POC
  • Design a custom VGG type model for speed and performance optimization with quantization techniques

Gesture Recognition

  • Lattice iCE40 FPGA with IR transmitter-based solution
  • Configured camera for enhanced IR sensitivity in RTL to mimic IR sensor-based input
  • Generated dataset by capturing actual images from the hardware itself for better accuracy and performance. Developed C# Windows app
  • Customized SqeezeDet network architecture to fit into the small footprint of Lattice iCE40 FPGA

AWS DeepLens

  • Deployed models based on Face analytics, clothing style detection, logo detection & scene detection
  • Developed lambda function for all the models for inference output processing
  • Developed ML IOT quiz based on pre-trained MobileNet SSD object detection model and node-red based service

POC Projects (Deep Learning)

  • Age & gender detection (Targeted advertisement)
  • Driver distraction alert
  • Face mask detection
  • Social distancing alert
  • Facial expression recognition

Education

Charotar University of Science & Technology

B.Tech (Electronics & Communication)  2011 – 2015