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Applied AI Engineer II

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Microsoft Corporation

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Location:
India , Bangalore

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Contract Type:
Not provided

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Salary:

Not provided

Job Description:

As an Applied AI Engineer 2 for CXA, 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 of cutting-edge AI technologies into Microsoft products and services, ensuring they are inclusive, ethical, and impactful. You will collaborate across product, research and engineering teams to bring innovative solutions to life, applying your expertise in machine learning, data science, and AI to solve complex problems. Your work will directly influence product direction and customer experiences.

Job Responsibility:

  • Build collaborative relationships with product and business groups to deliver AI-driven impact
  • Research and implement state-of-the-art using foundation models, prompt engineering, RAG, graphs, multi-agent architectures, as well as classical machine learning techniques
  • Fine-tune foundation models using domain-specific datasets
  • Evaluate model behavior on relevance, bias, hallucination, and response quality via offline evaluations, shadow experiments, online experiments, and ROI analysis
  • Apply strong software engineering skills in languages such as C# and Python to design, develop, and optimize scalable, reliable, and maintainable AI‑driven systems
  • Develop LLM prompts, agents, and query execution workflows, often with tight latency constraints
  • Build rapid AI solution prototypes, contribute to production deployment of these solutions, debug production code, support MLOps/AIOps
  • Contribute to papers, patents, and conference presentations
  • Translate research into production-ready solutions and measure their impact through A/B testing and telemetry that address customer needs
  • Ability to use data to identify gaps in AI quality, uncover insights and implement PoCs to show proof of concepts
  • Demonstrate deep expertise in AI subfields (e.g., deep learning, Generative AI, NLP, muti-modal models) to translate cutting-edge research 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 integrate state-of-the-art research to meet business goals
  • Maintain clear documentation of experiments, results, and methodologies
  • Share findings through internal forums, newsletters, and demos to promote innovation and knowledge sharing
  • Apply a deep understanding of fairness and bias in AI by proactively identifying and mitigating ethical and security risks—including XPIA (Cross-Prompt Injection Attack) unfairness, bias, and privacy concerns—to ensure equitable and responsible outcomes
  • Ensure responsible AI practices throughout the development lifecycle, from data collection to deployment and monitoring
  • Contribute to internal ethics and privacy policies and ensure responsible AI practice throughout AI development cycle from data collection to model development, deployment, and monitoring
  • Design, develop, and integrate generative AI solutions using foundation models and more
  • Deep understanding of small and large language models architecture, Deep learning, fine tuning techniques, multi-agent architectures, classical ML, and optimization techniques to adapt out-of-the-box solutions to particular business problems
  • Prepare and analyze data for machine learning, identifying optimal features and addressing data gaps
  • Develop, train, and evaluate machine learning models and algorithms to solve complex business problems, using modern frameworks and state-of-the-art models, open-source libraries, statistical tools, and rigorous metrics
  • Address scalability and performance issues using large-scale computing frameworks
  • Monitor model behavior, guide product monitoring and alerting, and adapt to changes in data streams

Requirements:

  • Bachelor’s degree in Computer Science, Statistics, Electrical/Computer Engineering, Physics, Mathematics or related field, OR Master’s degree OR PHD AND 1+ years of experience working with machine learning libraries to solve real world AI/ML problems
  • Ability to meet Microsoft, customer and/or government security screening requirements
  • Microsoft Cloud Background Check
  • Experience with MLOps Workflows, including CI/CD, monitoring, and retraining pipelines
  • Familiarity with modern LLMOps frameworks (e.g., LangChain, PromptFlow)
  • 1+ years of experience publishing in peer-reviewed venues or filing patents
  • Experience presenting at conferences or industry events
  • 1+ years of experience conducting research in academic or industry settings
  • Strong software engineering skills, including hands‑on development experience in C# and Python for building scalable, high‑performance, and production‑ready systems
  • Experience in working with Generative AI models and ML stacks
  • Experience across the product lifecycle from ideation to shipping

Additional Information:

Job Posted:
March 13, 2026

Employment Type:
Fulltime
Work Type:
On-site work
Job Link Share:

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