Associate Consultant
Bangalore, Karnataka, India
As an AI Software Engineer in KDN’s AI Labs, you'll step into the real-world application of artificial intelligence and become part of a team that's pushing the boundaries of what's possible in professional services. You'll dive straight into supporting the development of cutting-edge AI solutions that solve real-world challenges across service lines. This isn't about watching from the sidelines – you'll work shoulder-to-shoulder with experienced AI engineers and researchers, transforming use cases and ideas into powerful solutions while building your foundation in professional AI development.
AI Research and Development- Conduct applied research in AI Agents, Traditional AI (Knowledge-based AI, Symbolic AI), and Generative AI (Deep Learning, RNN, CNN).
- Develop and optimize state-of-the-art AI models for real-world applications across various business domains.
- Work on LLMs, reinforcement learning, and multi-agent systems for intelligent automation.
- Contribute to the advancement of AI-driven decision-making systems and explainable AI (XAI).
- Design, train, and fine-tune deep learning models for computer vision, NLP, and multimodal AI.
- Implement AI-driven software applications using cutting-edge frameworks like TensorFlow, PyTorch, JAX, and Hugging Face.
- Develop AI pipelines that integrate symbolic AI with deep learning for enhanced interpretability and robustness.
- Collaborate with data engineers to build scalable AI models and deploy them on cloud and on-prem infrastructure.
- Conduct experiments to evaluate AI models for accuracy, robustness, and efficiency.
- Optimize model performance, interpretability, and generalization to new datasets.
- Benchmark AI models against industry-standard datasets and propose improvements.
- Work closely with AI engineers, data scientists, and business stakeholders to translate AI research into enterprise-grade solutions.
- Contribute to AI whitepapers, patents, and publications in top-tier conferences and journals.
- Stay updated with the latest AI trends and drive innovation in AI-driven automation and enterprise intelligence.
Education
- M.Tech in Computer Science, AI, Data Science, Machine Learning, or related fields.
- Strong foundation in mathematics, statistics, and optimization techniques for AI model development.
Technical Skills
- Deep Learning: Proficiency in CNNs, RNNs, Transformers, GANs, VAEs, Diffusion Models.
- AI Agents: Hands-on experience with reinforcement learning, multi-agent systems, and intelligent automation.
- Traditional AI: Experience with rule-based systems, expert systems, and hybrid AI approaches.
- Programming: Strong skills in Python (TensorFlow, PyTorch, Hugging Face), C++, and/or Julia.
- Data Processing: Proficiency in Numpy, Pandas, SQL, Spark, and data augmentation techniques.
- AI Frameworks: Hands-on experience with LLMs (GPT, BERT, LLaMA, Claude, Mistral), OpenAI API, LangChain, and Retrieval-Augmented Generation (RAG).
- Optimization: Experience with hyperparameter tuning, model pruning, and quantization techniques.
- Cloud & DevOps: Familiarity with AWS, Azure, GCP, Docker, Kubernetes, MLflow, and CI/CD pipelines for AI deployment.
Preferred Experience
- Published research papers in AI/ML conferences (Neur-IPS, ICML, CVPR, AAAI, ACL, etc.).
- Experience in fine-tuning and optimizing Large Language Models (LLMs) for enterprise use cases.
- Knowledge of neuro-symbolic AI, causal reasoning, and graph neural networks (GNNs).
- Exposure to quantum computing, federated learning, and edge AI is a plus.
* Salary range is an estimate based on our AI, ML, Data Science Salary Index 💰
Tags: APIs AWS Azure BERT CI/CD Claude Computer Science Computer Vision Deep Learning DevOps Diffusion models Docker GANs GCP Generative AI GPT ICML JAX Julia Kubernetes LangChain LLaMA LLMs Machine Learning Mathematics MLFlow ML models NLP NumPy OpenAI Pandas Pipelines Python PyTorch RAG Reinforcement Learning Research RNN Spark SQL Statistics TensorFlow Transformers
Perks/benefits: Conferences
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