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Microsoft Principal Applied Science Manager 
Taiwan, Taoyuan City 
153243233

Today

As aScience Managerfor BIC, you will play a pivotal role in advancing Microsoft's mission to empower every individual and organization on the planet to achieve more. You will contribute to the development and integration ofYou will collaborate acrossThis rolewill combineAI knowledge withapplied sciencedemonstrate a growth mindset

Required Qualifications

  • Bachelor's Degree in Statistics, Econometrics, Computer Science, Electrical or Computer Engineering, or related field AND 8+ years related experience (e.g., statistics, predictive analytics, research)
    • OR Master's Degree in Statistics, Econometrics, Computer Science, Electrical or Computer Engineering, or related field AND 6+ years related experience (e.g., statistics, predictive analytics, research)
    • OR Doctorate in Statistics, Econometrics, Computer Science, Electrical or Computer Engineering, or related field AND 5+ years related experience (e.g., statistics, predictive analytics, research)
  • OR equivalent experience.
  • 3+ years of people management experience.
  • 1+ years of experience withgenerativeAIOR LLM/ML

Other Requirements:

  • to meet Microsoft,customerand/or government security screening requirementsarerequiredfor this role. These requirements include but are not limited to the following specialized security screenings:
  • requiredto pass the Microsoft Cloud Background Check upon hire/transfer and every two years thereafter.

Preferred Qualifications

  • Experience withMLOpsWorkflows, including CI/CD, monitoring, and retraining pipelines.
  • Familiarity with modernLLMOpsframeworks (e.g.,LangChain,PromptFlow)
  • + years of experience publishing in peer-reviewed venues or filing patents
  • Experience presenting at conferences or industry events
  • + years of experience conducting research in academic or industry settings
  • + year of experience developing and deploying live production systems
  • + years of experience working with Generative AI models and ML stacks

Certain roles may be eligible for benefits and other compensation. Find additional benefits and pay information here:Microsoft will accept applications for the role until October 15, 2025.

Bringing the State of the Art to Products

  • Build collaborative relationships with product and business groups to deliver AI-driven impact
  • LeadResearch and implementation ofstate-of-the-artusing foundation models, prompt engineering, RAG, graphs, multi-agent architectures, as well as classical machine learning techniques.
  • Fine-tunefoundation models using domain-specificdatasets. -Evaluate model behavior on relevance, bias, hallucination, and response qualityvia offline evaluations, shadow experiments, online experiments, and ROI analysis.
  • Build rapid AI solution prototypes, contribute to production deployment of these solutions, debug production code, supportMLOps/AIOps.
  • Contribute to papers, patents, and conference

Leveraging Researchin real-world problems

  • deepexpertisein AI subfields (e.g.,deep learning, Generative AI,NLP,muti-modal models)to translatecutting-edgeresearch into practical, real-world solutions that drive product innovation and business impact.
  • Share insights on industry trends and applied technologies with engineering and product teams.
  • Formulate strategic plans that integratestate-of-the-art

Documentation

  • Maintain clear documentation of experiments, results, and methodologies.
  • Share findings through internal forums, newsletters, and demos to promote innovation and knowledge sharing

,and Security

  • Ensure responsible AI practices throughout the development lifecycle, from data collection to deployment and monitoring.
  • Contribute to internal ethics and privacy policies andensure responsible AIpracticethroughoutAIdevelopment cyclefrom data collectionto model development, deployment, and monitoring.


Specialty Responsibilities

  • Design, develop, and integrate generative AI solutions usingfoundation models and more.
  • Deep understanding ofsmall and large language models architecture, Deep learning, fine tuning techniques, multi-agent architectures, classicalML,andoptimization techniques to adapt out-of-the-box solutions toparticular businessproblems
  • Prepare and analyze data for machine learning,identifyingoptimalfeaturesandaddressingdata gaps.