Responsibilities
Responsibilities: -
Optimize model performance, scalability, and efficiency
- Conduct experiments to evaluate model performance, robustness, and generalization
- Implement customization techniques for various NN based architectures
- Explore novel techniques and approaches to enhance model capabilities
- Stay up-to-date with the latest advancements in NLP, deep learning, and AI research
- Work with large-scale datasets, preprocess them, and create appropriate data representations
- Select relevant features and ensure data quality for training and evaluation
- Develop and deploy customized LLM solutions for customer scenarios
- Optimize models using fine-tuning, distillation, and synthetic data generation
- Mentor and guide team members to foster innovation and technical excellence
- Build novel data generation solutions to synthesize complex speech scenarios and finetune models.
- Build data analysis metrics and solutions to understand the model results, identify gaps, and guide solutions.
- Collaborate with the global Microsoft team, drive innovative solutions for significant customer asks, and deliver sustained large impacts.
- Mentor and influence peers, sharing expertise and fostering a growth-oriented inclusive team culture.
- Contribute to patents and publications at top-tier conferences and represent the team’s technical leadership within and outside Microsoft.
Qualifications
Qualifications - 10+ years of experience in machine learning, with a strong focus on GenAI and LLMs - Depth in Data Science, Generative AI and Engineering - Ph.D. or Master’s in CS, AI, or a related field -
Hands-on experience with LLM fine-tuning, model compression, and synthetic data generation preferred -
A strong background in machine learning, deep learning, and natural language processing - Proficiency in Python and relevant ML libraries (e.g., TensorFlow, PyTorch) -
Experience with transformer-based models (e.g., BERT, GPT, T5, Llama) -
Familiarity with cloud platforms (e.g., Azure, AWS) and distributed computing - Solid understanding of statistics, linear algebra, and probability theory is preferred -
Excellent problem-solving skills and the ability to work independently and collaboratively -
Proven ability to build, optimize, and scale AI models in production.
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