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4 到 6 年
6 到 10 年
10 到 15 年
15 年以上
Avatar of 陳勤霖.
Avatar of 陳勤霖.
曾任
博士後研究員 @洛桑大學神經發育疾病實驗室
2023 ~ 2023
Data Scientist, Data Analyst, Machine Learning Engineer
一個月內
陳勤霖 神經工程博士背景的數據分析師 Ph.D. in Neuroscience from Neuroengineering lab I have 5 years of hands-on experience in image and data analysis with biotechnology innovation projects. Dependable ability in managing collaborative projects to success. Business-driven motivation to apply analytic skills to optimize the product and its development procedure. https://chinlinchen1312.wixsite.com/chin-lin-chen 工作經歷 一月十二月 2023 博士後研究員 洛桑大
Data Science
Data Analysis
Machine Learning
待业中
正在积极求职中
全职 / 对远端工作有兴趣
4 到 6 年
洛桑聯邦理工學院(EPFL)
神經科學
Avatar of Sulfa Rais.
Avatar of Sulfa Rais.
Lecturer @Universitas Mandala Waluya Kendari
2023 ~ 现在
Education-related Occupations
一個月內
health-related concepts and terminology. Foster an inclusive and interactive learning environment to ensure student engagement and comprehension. Employ innovative teaching methods to prepare students for effective communication in healthcare settings. Committing to academic excellence, I bring a holistic approach to language instruction, nurturing a positive and collaborative learning atmosphere. Lecturer • Universitas Halu Oleo JanuaryPresent | Kendari, Indonesia Educator specializing in English for Specific Purposes with a focus on Economic contexts. Lead a 30-student class, designing and delivering targeted lessons that integrate language proficiency with key economic concepts and terminology. Employ a practical, real
Adobe Photoshop
Adobe Illustrator
Accounting
就职中
正在积极求职中
全职 / 对远端工作有兴趣
4 到 6 年
Halu Oleo University
English Education
Avatar of the user.
Avatar of the user.
曾任
Design Lead @1TM
2020 ~ 现在
Product Designer (UI/UX)
一個月內
Communication
UX/UI Design
Visual Design
待业中
正在积极求职中
全职 / 对远端工作有兴趣
6 到 10 年
Shih Chien University
媒體傳達設計學系
Avatar of the user.
Avatar of the user.
曾任
Senior Front-End Software Engineer @KKSTREAM 香港商科科串流股份有限公司
2020 ~ 2022
前端工程師 Front-End Developer
一個月內
Front-End Development
Front-End Web Development
Javascript(ES6)
待业中
正在积极求职中
全职 / 对远端工作有兴趣
6 到 10 年
國立中山大學 National Sun Yat-Sen University
Computer Science
Avatar of 吳正文.
Avatar of 吳正文.
技術維運部經理 @紅心辣椒娛樂科技股份有限公司(台灣)
2008 ~ 现在
Project Lead / Tech Lead / Team Lead / Technical Manager
一個月內
Maintenance Department Manager IT Department Specialist • Genuine Computer Co., Ltd. JuneJune 2008 HQ Information Equipment Update Planning. Neihu HQ Network Environment Optimization and Information Security. Establishment of Data Remote Backup Mechanism. Online Education Training Environment. IT Department Specialist • Eslite Bookstore JuneDecember 2005 Maintenance and Collaborative Planning of Eslite Xinyi Store's Network Environment During Store Expansion Phase. Improvement of Network Environments Across Eslite Bookstores. Planning of HQ Data Center and Network Infrastructure. Implementation of Email System and Spam Blocking Mechanism. Hello! I'm Marco Wu, also known as Zhengwen among
Linux System Administration
System Engineering
Network Administration
就职中
正在积极求职中
全职 / 对远端工作有兴趣
15 年以上
台北城市科技大學
電機
Avatar of the user.
Avatar of the user.
.Net 工程師 @凱文科技 Kaven Technology
2023 ~ 现在
軟體開發
一個月內
PHP
Laravel
C#
就职中
正在积极求职中
全职 / 对远端工作有兴趣
4 到 6 年
國立台北科技大學
工業工程管理系
Avatar of Pan Ping-Han.
Avatar of Pan Ping-Han.
曾任
Senior Marketing Specialist @ASUS Cloud Corporation
2017 ~ 2023
行銷企劃專員
一個月內
Pan Ping-Han Experienced in SaaS company for 9 years, specializing in global customer service & digital marketing. Skilled in communication, coordination, and executing integrated strategies. Capable of both collaborative teamwork and efficient independent work. Taipei City, [email protected] WORK EXPERIENCE Senior Mar keting Specialist ASUS Cloud Corporation MarMay 2023 Integrated and utilized various marketing channels, including EDM, official website, social media, and cross-industry collaborations, for content marketing, achieving a breakthrough in the annual target attainment rate by exceeding 110%. Managed the company's official website and its content, collaborated with advertisers on
Data-Driven Marketing
Critical thinking
Handling pressure
待业中
正在积极求职中
全职 / 对远端工作有兴趣
4 到 6 年
National Kaohsiung First University of Science and Technology
Applied English
Avatar of Winnie Kuo.
Avatar of Winnie Kuo.
曾任
UX Designer @美商普維股份有限公司台灣分公司
2020 ~ 2022
UI/UX Designer
一個月內
Chiao Tung University There are always obstacles and boundaries between members from different disciplinary when it comes to working collaboratively. As a interdisciplinary student myself, I could use my knowledge from both design and engineering fields to narrow the perceptual gap. As the result, My MA thesis "Approaching Collaborative Design" proposed a method of running a participatory design workshop in order to agglomerate consensus and improve the communication in the multi-disciplinary team. Collaborative and Industrial Design @ Aalto University This is undoubtedly the most precious and life-changing period of time for me: the life in
UI/UXDesign
Service Design
Sketch
待业中
正在积极求职中
全职 / 对远端工作有兴趣
6 到 10 年
National Chiao Tung University
Institute of Applied Art
Avatar of Tracy East.
Avatar of Tracy East.
Chief Marketing Officer @REVELATION WELLNESS FOUNDATION
2021 ~ 现在
Head of Marketing and Communications
一個月內
Tracy East Chief Marketing Officer Raleigh, NC [email protected] Summary Marketing executive skilled in creating and implementing digital strategies, increasing brand awareness and developing communication initiatives. More than 16 years of experience in digital marketing, communication, public relations and community outreach. Proven successful at closely managing marketing projects and teams. Skilled in strategic planning, problem-solving, project management and team leadership. Collaborative with a relentless work ethic. Work Experience Chief Marketing Officer • REVELATION WELLNESS FOUNDATION FebruaryPresent Collaborated with executive leadership to develop long-term business goals aligned with company objectives
Wordpress
Canva
Google Suite
就职中
正在积极求职中
全职 / 对远端工作有兴趣
15 年以上
Anderson University
Christian Education
Avatar of Sylvia Li.
Avatar of Sylvia Li.
Supervisor @Capital Asset Exchange & Trading, LLC
2021 ~ 现在
Project Manager, Consultant
一個月內
Sin-Huei, Li (Sylvia) Adept at leveraging professional logistics knowledge to work collaboratively with multiple teams on global projects, consistently delivering creative solutions to complex challenges. With proactive approach, coupled with the ability to thrive under high-pressure environments, enables me to effectively multitask and meet expectations. https://www.linkedin.com/in/lisinhuei/ Taiwan [email protected] Experience JunNov 2023 Taiwan ( Remote work) Settlement Logistics Supervisor Capital Asset Exchange & Trading, LLC Collaborate with multinational vendors to coordinate, schedule, and track shipments of semiconductor manufacturing equipment and other high-tech
Microsoft Office
strategy consulting
3PL Management
就职中
正在积极求职中
全职 / 我只想远端工作
4 到 6 年
Chang Jung Christian University
Bachelor's degree

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职场能力评价定义

专业技能
该领域中具备哪些专业能力(例如熟悉 SEO 操作,且会使用相关工具)。
问题解决能力
能洞察、分析问题,并拟定方案有效解决问题。
变通能力
遇到突发事件能冷静应对,并随时调整专案、客户、技术的相对优先序。
沟通能力
有效传达个人想法,且愿意倾听他人意见并给予反馈。
时间管理能力
了解工作项目的优先顺序,有效运用时间,准时完成工作内容。
团队合作能力
具有向心力与团队责任感,愿意倾听他人意见并主动沟通协调。
领导力
专注于团队发展,有效引领团队采取行动,达成共同目标。
一年內
Logo of TSMC.
TSMC
2021 ~ 2022
专业背景
目前状态
待业中
求职阶段
专业
软体工程师, 机器学习工程师
产业
人工智能 / 机器学习, 软件, 区块链
工作年资
小於 1 年
管理经历
无管理经验
技能
Python
C++
JAVA
OOP Programming
meta-heuristic algorithm
Azure DevOps
Deep Learning
tensorflow
SQL
语言能力
Chinese
母语或双语
English
中阶
求职偏好
希望获得的职位
Software Engineer / Backend Engineer / DevOps Engineer
预期工作模式
全职
期望的工作地点
Taipei, 台灣, Hsinchu, 新竹市台灣
远端工作意愿
对远端工作有兴趣
接案服务
学历
学校
國立中山大學 National Sun Yat-Sen University
主修科系
資訊工程所
列印

Zhe-Wei Xiao

  

[email protected]

+886917730565

Profile

I am Justin, who graduated from the department of Computer Science Engineering at National Sun Yat-sen University. I am friendly, optimistic, and willing to learn new knowledge. 

As a software engineer, I am proficient in using Python, C/C++, and Java, and have an understanding of Git, which I have utilized for collaborative development projects with team members. Additionally, I have experience with Azure CI/CD, Docker, and Kubernetes (K8s), which has allowed me to proficiently manage and deploy applications to the cloud. These technologies has enabled me to streamline the software development process and enhance the overall quality of the projects.

I have served as the co-PI of a project under the Ministry of Science and Technology, honing my skills in coordination and teamwork. During my university studies, I also acted as a teaching assistant for courses in Artificial Intelligence, Algorithms, and Individual Study, helping instructors address students' inquiries.

My research focus is on neural network training algorithms to enhance the accuracy of deep learning models. I have proposed a novel optimization algorithm in my thesis that combines meta-heuristic algorithms and gradient-based optimization techniques, effectively improving the accuracy of deep learning models. The effectiveness of the proposed algorithm is demonstrated through experiments on various types of datasets and neural network models.

Work Experience

Engineer of MTIT, TSMC September 2021 - April 2022

#VB #ASP.NET #SQL #Azure

  • Develop and operate the full automation systems running in 200mm FABs.

  • Engage with FAB users to develop high value requirements and solutions to conquer the challenges about manufacturing.

  • Transform repeatable tasks into automation tools (CI/CD)

Skills

  • Software Engineer

    • S.O.L.I.D
    • Design Pattern
    • MVC
  • Programming Language

    • Python
    • C/C++
    • Java

              

  • Deep Learning

    • Neural Network Optimization Algorithm
    • Hyper-Parameter Tuning Algorithm
  • Optimization Algorithm

    • Meta-heuristic Algorithm
    • Gradient-based Algorithm

Publications

Thesis

An Effective Optimizer based on Global and Local Searched Experiences for Neural Network Training.

This thesis proposes a novel hybrid optimizer, GLAdam, which combines the benefits of meta-heuristic and gradient-based methods. GLAdam calculates the update direction by incorporating both global and local searched experiences, leading to an improved optimization process. The performance of GLAdam was evaluated through time series numerical forecasting and image classification experiments, demonstrating its effectiveness in training machine learning models.

Conference paper

ACM ICEA, “An Effective Optimizer based on Global and Local Searched Experiences for Short-term Electricity Consumption Forecasting”, Korea, 2020

This study presents a novel optimization algorithm, GLAdam, aimed at addressing the limitations of conventional gradient-based optimization methods. GLAdam incorporates a heuristic mechanism that leverages past search experiences, resulting in a more efficient exploration-exploitation trade-off during the optimization process. The results of experiments on time series numerical forecasting and image classification datasets show that GLAdam outperforms popular optimization algorithms such as Adagrad, RMSprop, and Adam, with an improvement in accuracy of 5.37% compared to the best performing algorithm.

ACM ICEA, “An Effective Multi-Swarm Algorithm for Optimizing Hyperparameters of DNN”, Korea, 2020

This study proposes an improved Multi-Swarm Particle Swarm Optimization (MSPSO) algorithm for optimizing hyperparameters of Deep Neural Networks (DNNs). The proposed algorithm outperforms traditional methods and was evaluated on Taipei passenger data, demonstrating improved accuracy in predicting the number of passengers for Taipei metro stations compared to other machine learning algorithms, DNN, and PSO with DNN.

Ministry of Science and Technology Program

A High-Efficiency Smart Grid Management System Combining Deep learning and Meta-heuristic Algorithms — 2020

    • Using particle swarm optimization algorithm and search economic algorithm to improve the optimizer in deep learning to provide an accurate electric load forecasting model
    • Using genetic algorithms to adaptively adjust the convolutional neural network structure and feature extraction of abnormal power consumption in smart grids

Towards Deep Learning for Next-Generation Automation: A Case Study of Intelligent Traffic Control Systems — 2021

    • Using AutoML to predict traffic flow on plane roads and predict people flow in mass transit systems
    • Using federated learning to control traffic lights at multiple intersections
    • Road Travel Recommendation Using Reinforcement Learning
简历
个人档案

Zhe-Wei Xiao

  

[email protected]

+886917730565

Profile

I am Justin, who graduated from the department of Computer Science Engineering at National Sun Yat-sen University. I am friendly, optimistic, and willing to learn new knowledge. 

As a software engineer, I am proficient in using Python, C/C++, and Java, and have an understanding of Git, which I have utilized for collaborative development projects with team members. Additionally, I have experience with Azure CI/CD, Docker, and Kubernetes (K8s), which has allowed me to proficiently manage and deploy applications to the cloud. These technologies has enabled me to streamline the software development process and enhance the overall quality of the projects.

I have served as the co-PI of a project under the Ministry of Science and Technology, honing my skills in coordination and teamwork. During my university studies, I also acted as a teaching assistant for courses in Artificial Intelligence, Algorithms, and Individual Study, helping instructors address students' inquiries.

My research focus is on neural network training algorithms to enhance the accuracy of deep learning models. I have proposed a novel optimization algorithm in my thesis that combines meta-heuristic algorithms and gradient-based optimization techniques, effectively improving the accuracy of deep learning models. The effectiveness of the proposed algorithm is demonstrated through experiments on various types of datasets and neural network models.

Work Experience

Engineer of MTIT, TSMC September 2021 - April 2022

#VB #ASP.NET #SQL #Azure

  • Develop and operate the full automation systems running in 200mm FABs.

  • Engage with FAB users to develop high value requirements and solutions to conquer the challenges about manufacturing.

  • Transform repeatable tasks into automation tools (CI/CD)

Skills

  • Software Engineer

    • S.O.L.I.D
    • Design Pattern
    • MVC
  • Programming Language

    • Python
    • C/C++
    • Java

              

  • Deep Learning

    • Neural Network Optimization Algorithm
    • Hyper-Parameter Tuning Algorithm
  • Optimization Algorithm

    • Meta-heuristic Algorithm
    • Gradient-based Algorithm

Publications

Thesis

An Effective Optimizer based on Global and Local Searched Experiences for Neural Network Training.

This thesis proposes a novel hybrid optimizer, GLAdam, which combines the benefits of meta-heuristic and gradient-based methods. GLAdam calculates the update direction by incorporating both global and local searched experiences, leading to an improved optimization process. The performance of GLAdam was evaluated through time series numerical forecasting and image classification experiments, demonstrating its effectiveness in training machine learning models.

Conference paper

ACM ICEA, “An Effective Optimizer based on Global and Local Searched Experiences for Short-term Electricity Consumption Forecasting”, Korea, 2020

This study presents a novel optimization algorithm, GLAdam, aimed at addressing the limitations of conventional gradient-based optimization methods. GLAdam incorporates a heuristic mechanism that leverages past search experiences, resulting in a more efficient exploration-exploitation trade-off during the optimization process. The results of experiments on time series numerical forecasting and image classification datasets show that GLAdam outperforms popular optimization algorithms such as Adagrad, RMSprop, and Adam, with an improvement in accuracy of 5.37% compared to the best performing algorithm.

ACM ICEA, “An Effective Multi-Swarm Algorithm for Optimizing Hyperparameters of DNN”, Korea, 2020

This study proposes an improved Multi-Swarm Particle Swarm Optimization (MSPSO) algorithm for optimizing hyperparameters of Deep Neural Networks (DNNs). The proposed algorithm outperforms traditional methods and was evaluated on Taipei passenger data, demonstrating improved accuracy in predicting the number of passengers for Taipei metro stations compared to other machine learning algorithms, DNN, and PSO with DNN.

Ministry of Science and Technology Program

A High-Efficiency Smart Grid Management System Combining Deep learning and Meta-heuristic Algorithms — 2020

    • Using particle swarm optimization algorithm and search economic algorithm to improve the optimizer in deep learning to provide an accurate electric load forecasting model
    • Using genetic algorithms to adaptively adjust the convolutional neural network structure and feature extraction of abnormal power consumption in smart grids

Towards Deep Learning for Next-Generation Automation: A Case Study of Intelligent Traffic Control Systems — 2021

    • Using AutoML to predict traffic flow on plane roads and predict people flow in mass transit systems
    • Using federated learning to control traffic lights at multiple intersections
    • Road Travel Recommendation Using Reinforcement Learning