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Senior / Lead AI @ Tiger Analytics

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 Senior / Lead AI

Job Description

Role & responsibilities

  • Generative AI, NLP & MLE: Design, develop, deploy, and scale advanced applications using Generative AI models (e.g., GPT, LLaMA, Mistral), NLP techniques, and MLE/MLOps best practices to solve business challenges and unlock new opportunities.
  • Model Customization & Fine-Tuning: Apply techniques such as LoRA, PEFT, and fine-tuning of LLMs to build domain-specific models aligned with business use cases, with a focus on making them deployable in real-world environments.
  • ML Engineering & Deployment: Implement end-to-end ML pipelinesincluding data preprocessing, model training, versioning, testing, and deploymentusing tools like MLflow, Docker, Kubernetes, and CI/CD practices.
  • Innovative Problem Solving: Leverage cutting-edge AI and ML methodologies to solve practical business problems and deliver measurable results.
  • Scalable AI Solutions: Ensure robust deployment, monitoring, and retraining of models in production environments, working closely with data engineering and platform teams.
  • Data-Driven Insights: Conduct deep analysis of structured and unstructured data to uncover trends, guide decisions, and optimize AI models.
  • Cross-Functional Collaboration: Partner with Consulting, Engineering, and Platform teams to integrate AI/ML solutions into broader architectures and business strategies.
  • Client Engagement: Work directly with clients to understand requirements, present tailored AI solutions, andprovide advice on the adoption and operationalization of Generative AI and ML.

Preferred candidate profile

  • Overall 5-9 years of experience with real-time experience in GenAI and MLE/MLOps.
  • Expertise in Generative AI: Hands-on experience in designing and deploying LLM-based solutions with frameworks such as HuggingFace, LangChain, Transformers, etc.
  • MLE & Production Readiness: Proven experience in building ML models that are scalable, reliable, and production-ready, including exposure to MLE/MLOps workflows and tools.
  • Deployment Tools & Best Practices: Familiarity with containerization (Docker), orchestration (Kubernetes), model tracking (MLflow), and cloud platforms (AWS/GCP/Azure) for deploying AI solutions at scale.
  • Proficiency in development using Python frameworks (such as Django/Flask) or other similar technologies.
  • In-depth understanding of APIs, microservices architecture, and cloud-based deployment strategies.
  • Innovation & Curiosity: A passion for staying updated with the latest in Gen AI, LLMs, and ML engineering practices.
  • Communication: Ability to translate complex technical concepts into business-friendly insights and recommendations

Job Classification

Industry: IT Services & Consulting
Functional Area / Department: Engineering - Software & QA
Role Category: Software Development
Role: Technical Lead
Employement Type: Full time

Contact Details:

Company: Tiger Analytics
Location(s): Hyderabad

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Keyskills:   Gen AI Deploying Models Machine Learning Cicd Pipeline RAG LLM

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Tiger Analytics

Tiger Analytics India LLP Tiger Analytics is a big data , AI and advanced analytics consulting firm that provide services to businesses to help them make high impact AI and data driven business decisions. Tiger Analytics teams work in multi-disciplinary environments harnessing data to provide re...