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Avatar of ATIQ UR REHMAN.
Avatar of ATIQ UR REHMAN.
SHOP OWNER @ATIQ MOBILE AND REPAIRING LAB
2005 ~ Présent
Plus d'1 an
REAPIRING.I AM SPECIALIST IN SOFTWARE AND HARDWARE.I DEAL EVERY KIND OF INSTRUMENT USE IN THIS FIELD JUST LIKE ALL DONGELS .NOKIA BEST.CM2,EFT DONGLE,MRT DONGLE,Z3X BOX.OCTOPLUS.HCU,CHIMERA TOOL,ETC.AND THE OTHER WAY I KNOW OCA MACHINE SEPRATERE MACHINE FOR CUTTING GLASSES OF PHONE SPECIALIST IN IPHONE GLASS CUTTING AND ALL OTHER ANDROID PHONES.I KNOW CHIP LEVEL REPAIRING WELL KNOWN ABOUT HOW TO REPAIRE FACEID OF IPHONE BGA REPAIRING AND REBALLING.I KNOW HOW TO DIAGNOSE CELL PHONE AFTER WATER DAMAGES AFTER HALLING
Temps plein / Intéressé par le travail à distance
Plus de 15 ans
Allama Iqbal Open University Islamabad
english
Avatar of Patrick Hsu.
Avatar of Patrick Hsu.
Algorithm Research & Development @適着三維科技股份有限公司 TG3D Studio Inc.
2021 ~ Présent
Software Engineer
Dans 1 mois
Patrick Hsu AI Research & Development As a seasoned AI engineer with six years of experience, I specialize in computer vision, 3D body model reconstruction, generative AI, and possessing some knowledge in natural language processing (NLP). | New Taipei City, [email protected] Work Experience (6 years) Algorithm Research & Design• TG3D Studio MayPresent A skilled engineer specialized in computer vision and generative AI with experience in developing and training AI models for digital fashion applications. Body AI: Virtual Try On Integrated cutting-edge technologies such as Stable Diffusion, ControlNet, and Prompt Engineering to create a sophisticated system for
Python
AI & Machine Learning
Image Processing
Employé
Prêt à l'interview
Temps plein / Intéressé par le travail à distance
4 à 6 ans
國立台灣大學
生物產業機電工程所
Avatar of Danny_Teng.
Avatar of Danny_Teng.
Software Engineering Section Manager @仁寶
2023 ~ Présent
Lead Designer, Senior Consultant, Design Manager
Dans 1 mois
systems for IoT products on manufacturing lines, successfully applied to 37 IoT products, including smart meters, smart gym machines, and medical equipment, for quality monitoring and functional testing. -Collaborated closely with manufacturing teams and customers to enhance the ODM production process. -Developed instrument control programs for various measuring instruments, enabling programmatic control for smart manufacturing, encompassing digital power meters, Keysight Generators, and Anritsu RF instruments. -Led the development of the function testing program for the smart home gym machine (Tonal) and defined testing specifications for board function and assembly function. -Engineered automated to...
Python
Docker
DevOps
Employé
Prêt à l'interview
Temps plein / Intéressé par le travail à distance
6 à 10 ans
National Taipei University of Technology
電機系
Avatar of Sourav Bhattacharya.
Avatar of Sourav Bhattacharya.
Senior Manager @Invenics
2023 ~ Présent
Dans 1 mois
Sourav Bhattacharya Product Development Leader | Generative AI & LLM Greater London, England, Great Britain [email protected]://www.linkedin.com/in/bhattacharyasourav/ As an accomplished Product Lead, I possess over a decade of experience in spearheading the development and management of innovative software solutions. My expertise lies in steering cross-functional teams towards the delivery of cutting-edge technology products that drive company growth and meet evolving market needs. My track record of success reflects my ability to skillfully lead and motivate teams through complex projects, achieving measurable
Product Development
Product Management
LLM
Employé
Ouvert à de nouvelles opportunités
Temps plein / Je ne suis pas intéressé par le travail à distance
10 à 15 ans
Haldia Institute of Technology
Computer Science
Avatar of 周君諦.
Avatar of 周君諦.
Senior AI Research/Engineer (part-time) @NeuroBonic Inc.
2022 ~ 2023
AI工程師、機器學習工程師、深度學習工程師、資料科學家、Machine Learning Engineer、Deep Learning Engineer、Data Scientist
Dans 1 mois
Engineer Rooti Labs Ltd. • AugustJuly 2020 Supervisor : Michael Li 黎克邁 (CEO, Rooti Labs Ltd.) The primary developer of the processing and interpretation algorithm for long-term ECG recordings. The developed algorithm significantly enhanced the arrhythmia detection accuracy by 60% . This advancement reduced interpretation time, cutting it from hours to just under 20 minutes . Leadership and project management: Experiences in leading the project of the application process for medical device certifications, including CE and TFDA. English speaking: Participating in two overseas visits and medical congresses , offering technical support and explanation. Skills : D
Python
PyTorch
Machine Learning
Employé
Ouvert à de nouvelles opportunités
Temps plein / Intéressé par le travail à distance
4 à 6 ans
National Yang Ming Chiao Tung University
Computer Science
Avatar of 許碩文.
Avatar of 許碩文.
Senior Machine Learning Engineer @CoolSo
2020 ~ Présent
AI工程師、機器學習工程師、深度學習工程師、資料科學家、Machine Learning Engineer、Deep Learning Engineer、Data Scientist
Dans 1 mois
許碩文 / Shuo-Wen (Peter) Hsu Senior Machine Learning Engineer at CoolSo / Berkeley SkyDeck Batch15 Alumni - Machine learning expert with 5+ years' experience - Engaged in different fast-paced environments with various leadership roles including CTO - Former senior chip/system designer with 5+ years' experience - Energetic engineer pursuing adventures in AI/ML career Nangang District, Taipei City, Taiwan 115 Tel:EMail: [email protected] Work Experience Senior Machine Learning Engineer • CoolSo Technology CoolSo is a startup team builds gesture recognition through machine learning technologies uses only commercial grade sensors could be found
數位IC設計
python
Verification
Temps plein / Intéressé par le travail à distance
4 à 6 ans
University of California, Berkeley
Business/Commerce, General
Avatar of Johnny Hsieh.
Avatar of Johnny Hsieh.
Blockchain Enginner & AI Lead @Portal Network
Blockchain engineer & Blockchain consulting
Dans 1 mois
AI and blockchain technology led to opportunities such as overseeing a blockchain ICO project in Russia and co-founding a blockchain company where I developed the pioneering deep learning model for estimating the value of decentralized domain names. Currently, I manage ArgsData and MorphusAI, innovative companies focused on delivering cutting-edge data solutions and advancing digital human technology through advanced deep learning methodologies. Professional Skills: Artificial Intelligence Facial Recognition and Facial AI Technologies: Real-Time Facial Expression Tracking and Analysis: Utilizing advanced machine learning algorithms for immediate recognition and analysis of facial expressions, enhancing user interaction experiences.
Solidity
blockchain development
Docker
Temps plein / Intéressé par le travail à distance
4 à 6 ans
Avatar of the user.
Avatar of the user.
Data Analyst @R STUDIO
2022 ~ Présent
Software Engineer
Dans 1 an
Word
PowerPoint
Excel
Étudiant
Intern / Je ne suis pas intéressé par le travail à distance
4 à 6 ans
BISE LAHORE BOARD
Metric
Avatar of the user.
Avatar of the user.
Consultant - 資深 UI/UX 專員 @英屬維京群島商瑞嘉耐思科技有限公司台灣分公司
2019 ~ Présent
UX Designer
Dans 1 mois
Illustrator
Photoshop
clip studio
Employé
Temps plein / Intéressé par le travail à distance
6 à 10 ans
龍花科技大學
電子工程
Avatar of the user.
Avatar of the user.
Data Engineer @MediaTek Inc.
2019 ~ Présent
Senior Software Engineer
Dans 1 mois
Python
Linux
Machine Learning
Employé
Ouvert à de nouvelles opportunités
Temps plein / Intéressé par le travail à distance
6 à 10 ans
National Tsing Hua University
Data Mining, Database System

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Dans 2 mois
Taiwan
Professional Background
Statut Actuel
Employé
Progrès de la Recherche d'Emploi
Ne recherche pas de nouvelles opportunités
Professions
Back-end Engineer, Machine Learning Engineer, Python Developer
Fields of Employment
Logiciel
Expérience Professionnelle
2 à 4 ans
Management
None
Compétences
python
AWS
backend engineer
FastAPI
Celery
MySQL
RabbitMQ
Linux
Github Actions
git
CircleCI
Docker
AI & Machine Learning
k8s
PostgreSQL
Redis
GCP
Langues
English
Professionnel
Job search preferences
Position Désirée
Software Engineer / Backend Engineer
Type d'emploi
Temps plein
Lieu Désiré
台灣台北, 日本東京
Travail à distance
Intéressé par le travail à distance
Freelance
Non.
Éducation
École
National Taiwan Normal University
Spécialisation
Computer Science
Imprimer
Profile 00 00@2x

Yu Te, Wu (吳宥德)

Enthusiastic about learning and experiencing various unknown things. Good at reasoning and analyze principles behind a system.
AI Engineer。Backend Engineer。Fast Learner。Self-motivated。Cooperative

Taipei, Taiwan
[email protected]

https://github.com/BreezeWhite

Experience

Transferhelper。AI & Backend Engineer, 2022 / 12 - Present

Responsible for multiple projects, including AI and backend system development. Most of the time being an one person team.

。Develop intelligent lending bot on Bitfinex, which earns over 15% APR during half and year period.

。Build backend services with Kubernetes, PostgreSQL, and Redis on GCP.

。Complete monitoring functionalities using Grafana, Prometheus, and Slack.

。CICD build upon Google Cloud Build, and having a unit test coverage rate for over 85%.

。Survey and develop AI techniques to turn an human photo into a 3D model.

Pinkoi。Backend Engineer, 2022 / 01 - 2022/08

Responsible for the very core functionalities of online shopping platforms such as payment, bill management, and shipping.

。Huge upgrade and refactor of the complex, aged coupon system.

。Leading the project of the first-time experimental feature in the team.

。Strong ability to figure out the bug quickly in the huge system under little context.

Meteo Piano。AI Backend Engineer, 2021 / 07 - 2021/ 11

Build an end-to-end AI system, transcribing images into Midi files and build a backend system for hosting the system.

。Proposed the first available end-to-end solution for Optical Music Recognition problem.

。Built and integrated existing tools to a distributed restful API server in one month.

。Deploy services to AWS EC2, integrated with S3, VPC, ECS, and Load Balancer.

IIS, Academia Sinica。Research Assistant, 2017 / 06 - 2020 / 12

My research topic was about music transcription, which given the raw audio, the system produces symbolic representations such as MIDI. Published papers can be found here.

2 IEEE conference papers.

1 IEEE journal paper, representing the first research results ever on note-level multi-instrument

    transcription problem.

。Integrates research results developed by our lab into a single python package, and open sourced on Github which

    has earned over a thousand stars.

TrendMicro。Backend Engineer Intern, 2019 / 07 - 2020 / 06

Develop and maintain existing infrastructure on cloud services. Being commended for the fast learning speed and effectiveness on solving problems. Achieve every strict requirement on the code quality.

。Proposed a complete solution to a long-lasting problem across teams in my first two months of internship.

    The solution is shared with different teams, and helped multiple teams deploying to production environment.

Optimize CI/CD flow, saves up to 50% of runtime.

。Develop new strategy for Blue/Green deployment process on AWS.

。Refactor the deployment scripts for better readability. Write unit-tests to ensure the correctness.

。Translate Python code from machine learning team into Java backend code.

Blay。Backend Software Engineer Intern, 2018 / 09 - 2019 / 05

Skill Set

Programming Language - Python
Backend - FastAPI, Celery, RabbitMQ
Database - MySQL, PostgresSQL
Cloud Service - AWS, GCP
Platform - Linux
Development - git
CI/CD - Github Action, Google Cloud Build
AI - Tensorflow, PyTorch, Scikit-learn

Education

National Taiwan Normal University - M.S. in CS, 2018 / 9  - 2020 / 8

My research field while in master degree was about music transcription. With the cooperation and directed under IIS, Academia Sinica, we combined multiple AI techniques to analyze the music. The research results was also published to IEEE TASLP as a journal paper. The master thesis was also being selected to the final round of Merry Electroacoustic Thesis Award.

National Taiwan Normal University - B.S. in CS, 2014 / 9  - 2018 / 6


Projects


Oemer


A deep learning based end-to-end solution to the problem known as Optical Music Recognition, which aims to recognize music scores in the form of image, transform it to symbolic annotations like MusicXML. This is the first end-to-end approach that provides the most complete functionalities on the Github. Unlike other open source projects, Oemer is more robust to different conditions of the input resource. Also the output format of the final result is much more friendly then the other projects.

Omnizart

Github / Documentation / Paper


Omniscient Mozart, is the first python package that integrated with a variety of automatic music transcription techniques, including multi-pitch estimation, chord recognition, drum transcription, symbolic-domain beat tracking, vocal transcription. The repository has earned over 1000 stars on Github. All the modules are provided with pre-trained checkpoints. The core spirits of designing the API and CLI are simplicity and ease of understanding. We have also received several cooperation invitations.

  Besides transcription utilities, Omnizart also provides a consistent way for managing the life-cycle model building. From dataset downloading, feature generation, to the final MIDI result synthesis for convenient listening. It's also easy to extend modules with the concise and consistent API design.

  All models are implemented in Tensorflow 2.3.0. Unit tests are applied to critical functions. Linters are used to ensure the coding style. CI/CD system is also built to automatically check, run unit tests, build document page with Sphinx, publish docker image and python package.

Paragraph image 00 00@2x
Paragraph image 01 00@2x

THSR Ticket


Self challenge and learn to build a crawler, which is for booking Taiwan High Speed Railway tickets, without using third party browser engines such as Selenium. Without the need to render the screen, it is thus fast. To further improve the user experience, sqlite is used to preserve input history of personal information and station selections.

  The architecture follows MVVC mode to split the responsibilities. Schemas are also applied to check the format of both input and output data. This project also integrates unit tests and CI/CD flow to ensure the correctness of the program after each commit.

Music Transcription

Leveraging the cutting-edge AI techniques, with the newly proposed feature representation, we applied the models to multi-instrument transcription task and achieved SOTA performance. The base architecture is an U-net model, with improvement on the bottleneck block. We accommodate two types of layer: Atrous Spatial Pyramid Pooling (ASPP) and Self-Attention, to further improve the performance. The feature used both frequency-domain (spectrum) and time-domain (cepstrum) representation. The combination referred to CFP. Due to the nature of sparsity in the multi-instrument labels, we further modify the loss function to focus on the true-positive samples. Combined with various improvement, our research results shows the SOTA performance on different transcription tasks. Furthermore, we served the first evaluation results on note-level multi-instrument transcription all over the world.

Paragraph image 00 00@2x
Paragraph image 01 00@2x

Transcription Visualization


A visualization project of music transcription. The main idea is to dynamically 'draw' a special illustration for each piece by setting up conditions and rules. During the playing of the song, the drawing animation will also being displayed synchronously. You can watch how the illustration was being generated. The program was written in Processing, which is sub-classed from Java and has its own IDE. This was a funny experience and had learnt a lot from the development.
Resume
Profile
Profile 00 00@2x

Yu Te, Wu (吳宥德)

Enthusiastic about learning and experiencing various unknown things. Good at reasoning and analyze principles behind a system.
AI Engineer。Backend Engineer。Fast Learner。Self-motivated。Cooperative

Taipei, Taiwan
[email protected]

https://github.com/BreezeWhite

Experience

Transferhelper。AI & Backend Engineer, 2022 / 12 - Present

Responsible for multiple projects, including AI and backend system development. Most of the time being an one person team.

。Develop intelligent lending bot on Bitfinex, which earns over 15% APR during half and year period.

。Build backend services with Kubernetes, PostgreSQL, and Redis on GCP.

。Complete monitoring functionalities using Grafana, Prometheus, and Slack.

。CICD build upon Google Cloud Build, and having a unit test coverage rate for over 85%.

。Survey and develop AI techniques to turn an human photo into a 3D model.

Pinkoi。Backend Engineer, 2022 / 01 - 2022/08

Responsible for the very core functionalities of online shopping platforms such as payment, bill management, and shipping.

。Huge upgrade and refactor of the complex, aged coupon system.

。Leading the project of the first-time experimental feature in the team.

。Strong ability to figure out the bug quickly in the huge system under little context.

Meteo Piano。AI Backend Engineer, 2021 / 07 - 2021/ 11

Build an end-to-end AI system, transcribing images into Midi files and build a backend system for hosting the system.

。Proposed the first available end-to-end solution for Optical Music Recognition problem.

。Built and integrated existing tools to a distributed restful API server in one month.

。Deploy services to AWS EC2, integrated with S3, VPC, ECS, and Load Balancer.

IIS, Academia Sinica。Research Assistant, 2017 / 06 - 2020 / 12

My research topic was about music transcription, which given the raw audio, the system produces symbolic representations such as MIDI. Published papers can be found here.

2 IEEE conference papers.

1 IEEE journal paper, representing the first research results ever on note-level multi-instrument

    transcription problem.

。Integrates research results developed by our lab into a single python package, and open sourced on Github which

    has earned over a thousand stars.

TrendMicro。Backend Engineer Intern, 2019 / 07 - 2020 / 06

Develop and maintain existing infrastructure on cloud services. Being commended for the fast learning speed and effectiveness on solving problems. Achieve every strict requirement on the code quality.

。Proposed a complete solution to a long-lasting problem across teams in my first two months of internship.

    The solution is shared with different teams, and helped multiple teams deploying to production environment.

Optimize CI/CD flow, saves up to 50% of runtime.

。Develop new strategy for Blue/Green deployment process on AWS.

。Refactor the deployment scripts for better readability. Write unit-tests to ensure the correctness.

。Translate Python code from machine learning team into Java backend code.

Blay。Backend Software Engineer Intern, 2018 / 09 - 2019 / 05

Skill Set

Programming Language - Python
Backend - FastAPI, Celery, RabbitMQ
Database - MySQL, PostgresSQL
Cloud Service - AWS, GCP
Platform - Linux
Development - git
CI/CD - Github Action, Google Cloud Build
AI - Tensorflow, PyTorch, Scikit-learn

Education

National Taiwan Normal University - M.S. in CS, 2018 / 9  - 2020 / 8

My research field while in master degree was about music transcription. With the cooperation and directed under IIS, Academia Sinica, we combined multiple AI techniques to analyze the music. The research results was also published to IEEE TASLP as a journal paper. The master thesis was also being selected to the final round of Merry Electroacoustic Thesis Award.

National Taiwan Normal University - B.S. in CS, 2014 / 9  - 2018 / 6


Projects


Oemer


A deep learning based end-to-end solution to the problem known as Optical Music Recognition, which aims to recognize music scores in the form of image, transform it to symbolic annotations like MusicXML. This is the first end-to-end approach that provides the most complete functionalities on the Github. Unlike other open source projects, Oemer is more robust to different conditions of the input resource. Also the output format of the final result is much more friendly then the other projects.

Omnizart

Github / Documentation / Paper


Omniscient Mozart, is the first python package that integrated with a variety of automatic music transcription techniques, including multi-pitch estimation, chord recognition, drum transcription, symbolic-domain beat tracking, vocal transcription. The repository has earned over 1000 stars on Github. All the modules are provided with pre-trained checkpoints. The core spirits of designing the API and CLI are simplicity and ease of understanding. We have also received several cooperation invitations.

  Besides transcription utilities, Omnizart also provides a consistent way for managing the life-cycle model building. From dataset downloading, feature generation, to the final MIDI result synthesis for convenient listening. It's also easy to extend modules with the concise and consistent API design.

  All models are implemented in Tensorflow 2.3.0. Unit tests are applied to critical functions. Linters are used to ensure the coding style. CI/CD system is also built to automatically check, run unit tests, build document page with Sphinx, publish docker image and python package.

Paragraph image 00 00@2x
Paragraph image 01 00@2x

THSR Ticket


Self challenge and learn to build a crawler, which is for booking Taiwan High Speed Railway tickets, without using third party browser engines such as Selenium. Without the need to render the screen, it is thus fast. To further improve the user experience, sqlite is used to preserve input history of personal information and station selections.

  The architecture follows MVVC mode to split the responsibilities. Schemas are also applied to check the format of both input and output data. This project also integrates unit tests and CI/CD flow to ensure the correctness of the program after each commit.

Music Transcription

Leveraging the cutting-edge AI techniques, with the newly proposed feature representation, we applied the models to multi-instrument transcription task and achieved SOTA performance. The base architecture is an U-net model, with improvement on the bottleneck block. We accommodate two types of layer: Atrous Spatial Pyramid Pooling (ASPP) and Self-Attention, to further improve the performance. The feature used both frequency-domain (spectrum) and time-domain (cepstrum) representation. The combination referred to CFP. Due to the nature of sparsity in the multi-instrument labels, we further modify the loss function to focus on the true-positive samples. Combined with various improvement, our research results shows the SOTA performance on different transcription tasks. Furthermore, we served the first evaluation results on note-level multi-instrument transcription all over the world.

Paragraph image 00 00@2x
Paragraph image 01 00@2x

Transcription Visualization


A visualization project of music transcription. The main idea is to dynamically 'draw' a special illustration for each piece by setting up conditions and rules. During the playing of the song, the drawing animation will also being displayed synchronously. You can watch how the illustration was being generated. The program was written in Processing, which is sub-classed from Java and has its own IDE. This was a funny experience and had learnt a lot from the development.