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Taipei City, Taiwan
Machine Learning Engineer
Logo of Tera Thinker.
我們正在尋找積極、熱愛挑戰的 AI 開發實習生加入 Tera Thinker 的團隊,參與 AI 及 LLM 系統的開發。 在實習期間,你將直接投入實際的產品開發與運作。除了開發並維護目前已上線且服務全台數百所高中的線上學習平台之外,你也將從零開始參與全新服務的開發,親身體驗產品從構想到正式營運的完整流程。透過這份實習,你不僅能累積豐富的軟體工程實務經驗,更能在快速變化的 AI 時代中,培養出人機協作的產品發展與開發思維。 工作內容 技術研究(20%)針對最新的 AI 技術進行調查,研讀論文、程式碼與相關資料實際測試最新的技術或解決方案,並與現行或替代方案進行應用的比較與評估,最後形成決策建議現有服務的改進與重構(40%)分析服務數據,尋找潛在問題,觀察成因,設計改善實驗與解決方案實作方案、進行測試,在不影響既有服務的狀況下部署方案,分析成效並持續改善新服務的設計與開發(40%)了解最新的技術、產品發展及應用現況與 PO 緊密合作,設計真正符合市場需求的功能應用及實現方案快速的從頭打造 Prototype 及 MVP(Minimum Viable Product 最小可行性產品)
200 ~ 250 TWD / hour
No requirement for relevant working experience
No management responsibility
Logo of Kronos Research.
Role OverviewWe are seeking an experienced Machine Learning Researcher to join our research team. This role requires expertise in designing and deploying deep learning models within high-performance, low-latency trading systems. You will be working on developing robust, scalable models and integrating them into our trading infrastructure.Responsibilities Data Analysis Preprocessing: Understand and preprocess orderbook data.Deep Learning Model Design: Design models for time-series and orderbook data (Transformers, RNNs, CNNs, Attention).Scalable Training Implementation: Implement parallelized data loading pipelines.Feature Engineering: Develop and optimize orderbook features using C++.Backtesting Evaluation: Conduct rigorous backtesting across markets.Production Integration: Deploy models into real-time, low-latency systems.
Negotiable
No requirement for relevant working experience
No management responsibility
Logo of InAddition Consultants Ltd..
【職務核心】 您將利用海量數據構建核心決策模型,透過自動化手段解決內部的營運痛點。我们需要您具備將數學理論轉化為生產級 (Production-grade) 程式碼的能力。 數據煉金:使用 SQL 從龐大的資料倉儲中萃取 (Extraction) 有價值的特徵,並進行深度分析。模型開發與自動化:應用 Data Mining 與 ML 技術設計自動化工具,優化內部作業流程與決策效率。落地與維運:負責模型的容器化 (Docker) 封裝與部署,監控模型在正式環境的表現,確保系統的高可用性。技術顧問:與跨部門團隊協作,向非技術人員解釋 AI 模型的應用場景與邊界 (Limitations)。
1M ~ 1.2M TWD / year
3 years of experience required
No management responsibility
Logo of Dcard 狄卡科技股份有限公司.
Dcard 是在年輕族群有極高滲透率與影響力的社群平台。我們致力於打造一個讓每個人都可以放心分享自己故事的地方,讓平凡人分享不平凡故事的新世代社群服務。面對快速變化的社群生態,我們期待更多優秀的人才加入 Dcard。 為了達成這個目標,我們需要 Machine Learning Team Lead 加入我們,你將帶領 Dcard 的機器學習團隊,透過大規模使用者數據中發掘洞察,持續提升使用者體驗及產品黏著度。歡迎加入這個熱愛挑戰的技術團隊,一起打造被千萬人喜愛與使用的產品! 你將在團隊參與⋯ 帶領 Dcard 機器學習團隊,制定並推動團隊目標。與產品及商業團隊密切合作,確保模型設計、資料流程與系統建構,高度對齊 Dcard 社群、廣告產品策略,並支持團隊成員的職涯發展與技能成長。負責推薦演算法的設計、開發與優化,並驅動推薦系統的技術創新,包含模型訓練、Feature pipeline 設計、個人化推薦策略,以及系統穩定性維護。與 Infrastructure 及其他 ML/Engineering 等團隊緊密合作,共同建置 Dcard 機器學習相關系統。並從大量使用者數據中分析、挖掘洞察,以迭代演算法並優化產品體驗。與團隊成員及公司技術高階主管共同制定技術發展願景與中長期 Roadmap,持續提升團隊技術力與影響力。
Python
NLP
Machine Learning
Negotiable
5 years of experience required
Managing staff numbers: not specified
Logo of GoFreight.
【Company Overview】Recognized by Taiwan government as one of "Next Big" startups, GoFreight is harnessing the power of cutting-edge technologies to revolutionize the global freight-forwarding industry. We are searching for a self-motivated AI Intern who is eager to take the lead on crucial projects and drive innovative solutions.【Responsibilities】- Build AI prototypes that solve actual business problems. Think chatbots, document processing pipelines, routing systems. Most projects go from idea to working product in a few weeks.- Own your projects end-to-end: scoping, building, evaluating, shipping. The things you build will be used by real people.- Work with senior engineers and product managers to figure out what to build. Once the direction is clear, you run with it.- Evaluate and improve AI pipelines. That means measuring prompt quality, extraction accuracy, and whether the outputs are actually reliable.- Look for places where LLMs can replace tedious manual work in freight operations. Try things. If they don't work, write up what you learned and move on.- Put LLM-based tools into existing systems and workflows to automate what's slow or repetitive.- Write things down. Good documentation means the next person can pick up where you left off.- Keep up with what's happening in AI and share what you find. We like people who show up with ideas.
220 TWD / hour
No requirement for relevant working experience
No management responsibility
Logo of AIFT.
Our Product Vulcan is a cybersecurity solution specifically designed for GenAI, offering two core services: Red Team (vulnerability assessment) and Blue Team (real-time defense). It ensures GenAI compliance, cybersecurity robustness, and operational integrity. Since its official launch in 2024, Vulcan has been recognized by the international standard-setting organization OWASP as a certified vendor for LLM GenAI security testing and assessment. It is one of the few solutions capable of supporting multiple Asian languages (Traditional Chinese, Simplified Chinese, Japanese, Korean, Thai) and Standard Arabic. Learn more about us 👉 Vulcan product: https://vulcanlab.ai/Vulcan LinkedIn: https://www.linkedin.com/company/vulcanlab-ai/AIFT group: https://aift.io/ About the role We are seeking an experienced Machine Learning Lead to helm our Machine Learning team.In this pivotal role, you will be the engineering architect behind Vulcan’s core AI capabilities. You will act as the nexus between Research, Platform, and Product. Your mission is to translate cutting-edge findings on GenAI threats into robust, production-ready machine learning models that power our GenAI Security Guardrails (Blue Team) and Automated Vulnerability Assessment (Red Team).Crucially, you will serve as the bridge between deep tech and business strategy, articulating technical constraints (like FLOPS and latency) to leadership and clients while guiding the engineering direction. Key Responsibilities1. Model Development Optimization (Training Fine-tuning): Research to Production: Collaborate with the Security Research Team to operationalize new threat detection techniques. They identify the "what" (e.g., new prompt injection patterns); you determine the "how" (model architecture, training strategy). Fine-tuning Adaptation: Lead the fine-tuning of Language Models (e.g., using LoRA/PEFT) to optimize for our supported muti-lingual languages and specific security intents. Multimodal Readiness: Prepare the system for Multimodal (Text + Image/Audio) capabilities. Evaluate and implement models to detect visual prompt injections and non-textual threats as the product evolves. 2. MLOps Data Infrastructure: Enhance Scale MLOps: Take ownership of our existing ML pipelines. Focus on optimizing and scaling CI/CD/CT workflows to improve training efficiency and deployment velocity. Data Governance: Implement and enforce rigorous Data Versioning strategies (e.g., DVC) to ensure complete reproducibility of model artifacts and datasets. Monitoring Reliability: Maintain rigorous monitoring for model drift and performance, ensuring high reliability in a production security environment. 3. Cross-Functional Implementation Leadership: Platform Collaboration: Work closely with the Platform Engineering Team to integrate ML models into the broader product architecture. Ensure seamless interaction between model inference services and the main platform logic. Team Leadership: Lead and mentor Machine Learning Engineers, fostering a culture of engineering rigor, code quality, and operational excellence. Resource Management: Manage GPU resources and compute budgets effectively for both training and inference workloads. 4. Technical Strategy Stakeholder Management: Translating Tech to Business: Act as the technical voice of the ML team. You must effectively explain complex ML concepts (e.g., FLOPS, quantization trade-offs, model latency vs. accuracy) to executive leadership and clients. Cost-Benefit Analysis: Justify compute resource investments. Articulate the trade-off between infrastructure costs (GPU hours) and performance gains to non-technical stakeholders. -
Team Management
ML
Machine Learning
1.8M ~ 2.3M TWD / year
5 years of experience required
Managing 1-5 staff
Logo of AIFT.
Our Product Vulcan is a cybersecurity solution specifically designed for GenAI, offering two core services: Red Team (vulnerability assessment) and Blue Team (real-time defense). It ensures GenAI compliance, cybersecurity robustness, and operational integrity. Since its official launch in 2024, Vulcan has been recognized by the international standard-setting organization OWASP as a certified vendor for LLM GenAI security testing and assessment. It is one of the few solutions capable of supporting multiple Asian languages (Traditional Chinese, Simplified Chinese, Japanese, Korean, Thai) and Standard Arabic.Learn more about us 👉 Vulcan product: https://vulcanlab.ai/Vulcan LinkedIn: https://www.linkedin.com/company/vulcanlab-ai/AIFT group: https://aift.io/Tech Blog: https://medium.com/onedegree-tech-blogAbout the roleWe are looking for a talented Machine Learning Engineer to join our Product Core Engineering team. You will be responsible for building and optimizing machine learning workflows that directly power our AI-driven products. This role focuses on the full lifecycle of model development — from training and fine-tuning to deployment and monitoring — ensuring robust and efficient ML systems at scale. Why Join Us?Product Impact: Your work will be directly embedded in our core AI products, shaping user experience and product capabilities.Engineering Excellence: Be part of a team that values high-quality engineering, reproducibility, and scalability.Innovation: Opportunity to experiment with cutting-edge ML and GenAI technologies in production settings.Collaboration: Work alongside backend, platform, and product teams in a highly collaborative environment.Competitive Package: Receive attractive compensation and benefits aligned with your skills and performance. Key Responsibilities Model Development: Design and implement training processes for machine learning classifiers and generative models.Fine-tuning Prompting: Adapt pre-trained models to specific product needs through fine-tuning, prompt engineering, and parameter optimization.Hyperparameter Management: Configure and tune hyperparameters to balance accuracy, robustness, and performance.Pipeline Engineering: Build scalable training and evaluation pipelines to support continuous experimentation.Integration: Collaborate with backend and product engineers to deploy models into production systems.Monitoring Maintenance: Establish monitoring metrics and retraining strategies to maintain model performance in dynamic environments. -
ML
LLMs
GenAI
1.3M ~ 1.8M TWD / year
2 years of experience required
No management responsibility
Logo of ManpowerGroup萬寶華企業管理顧問股份有限公司.
Mechanical Engineer Reality Labs is developing the future of augmented reality (AR) products. As an Opto-Mechanical Engineer for the display and optics team, you will be part of a team brining new concepts from prototyping thru to mass production. You will be developing advanced technologies and designs, and working within evolving ecosystems to provide differentiating capabilities to our HW platforms. You will be part of a group of engineers at the forefront of the innovation for AR products. RESPONSIBILITIES● Drive Mechanical Engineering activities in a cross-functional hardware team ● Model, build, test, and refine AR products and prototypes ● Work across the full product development cycle, from concept inception to shipping product ● Apply rigorous engineering and tolerance techniques to high precision design requirements in the areas such as Optics, Mechanics, and Motion Control ● Coordinate with manufacturers and cross-functional teams on DFM activities, production bring up, and part and assembly qualification
SolidWorks
physical prototyping
NX
100K ~ 300K TWD / month
3 years of experience required
No management responsibility
Logo of 展旺數位有限公司.
・與產品、風控、運營團隊協作,針對業務需求定義資料模型與監控指標・建置 ETL 流程,收集與清洗來自平台的行為數據(如下注記錄、轉碼、點擊行為)・開發與維護異常偵測模型(如洗碼對打、機器人行為、套利用戶)・利用機器學習或統計模型預測玩家留存、LTV、流失風險・設計風控策略,提升平台資金與行爲風險控制能力・定期產出分析報告,提出可行的產品或營運優化建議
Spark
Redshift
Python
50K ~ 120K TWD / month
3 years of experience required
Managing staff numbers: not specified
Logo of SymptomTrace - 星坦科技股份有限公司.
Job Summary: You are responsible for contributing to the development of AI/ML solutions that will drive the innovation of our product offering. This entails understanding and AI model building, implementing and measuring the effectiveness of various AI/ML models in addressing various opportunities in the medical field. A proven track record of building AI projects over the past five years is essential. Job Responsibilities: Drive end-to-end ML projects from data engineering, machine learning model development/data analytics to deployment.Scope end-to-end requirements to ensure an efficient implementation of AI products.Work with the team to scope AI use cases and make sure that data is made available for analysis, articulate the needs of data scientists in the early stage of the project.Monitor AI project deployments, proactively identify risks, and coordinate with relevant parties to resolve issues.Work with the engineering team to design, execute, and monitor product experiments.Document and communicate findings to stakeholders in a clear and concise manner
1.5M ~ 2.1M TWD / year
6 years of experience required
No management responsibility

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