Posted:5 days ago|
Platform:
Work from Office
Full Time
Data Scientist with deep expertise in modern AI/ML technologies to join our innovative team. This role combines cutting-edge research in machine learning, deep learning, and generative AI with practical full-stack cloud development skills. You will be responsible for architecting and implementing end-to-end AI solutions, from data engineering pipelines to production-ready applications leveraging the latest in agentic AI and large language models.
Job Description
Key Responsibilities
AI/ML Development & Research
Design, develop, and deploy advanced machine learning and deep learning models for complex business problems
Implement and optimize Large Language Models (LLMs) and Generative AI solutions
Build agentic AI systems with autonomous decision-making capabilities
Conduct research on emerging AI technologies and their practical applications
Perform model evaluation, validation, and continuous improvement
Cloud Infrastructure & Full-Stack Development
Architect and implement scalable cloud-native ML/AI solutions on AWS, Azure, or GCP
Develop full-stack applications integrating AI models with modern web technologies
Build and maintain ML pipelines using cloud services (SageMaker, ML Engine, etc.)
Implement CI/CD pipelines for ML model deployment and monitoring
Design and optimize cloud infrastructure for high-performance computing workloads
Data Engineering & Database Management
Design and implement data pipelines for large-scale data processing
Work with both SQL and NoSQL databases (PostgreSQL, MongoDB, Cassandra, etc.)
Optimize database performance for ML workloads and real-time applications
Implement data governance and quality assurance frameworks
Handle streaming data processing and real-time analytics
Leadership & Collaboration
Mentor junior data scientists and guide technical decision-making
Collaborate with cross-functional teams including product, engineering, and business stakeholders
Present findings and recommendations to technical and non-technical audiences
Lead proof-of-concept projects and innovation initiatives
Required Qualifications
Education & Experience
Master's or PhD in Computer Science, Data Science, Statistics, Mathematics, or related field
5+ years of hands-on experience in data science and machine learning
3+ years of experience with deep learning frameworks and neural networks
2+ years of experience with cloud platforms and full-stack development
Technical Skills - Core AI/ML
Machine Learning: Scikit-learn, XGBoost, LightGBM, advanced ML algorithms
Deep Learning: TensorFlow, PyTorch, Keras, CNN, RNN, LSTM, Transformers
Large Language Models: GPT, BERT, T5, fine-tuning, prompt engineering
Generative AI: Stable Diffusion, DALL-E, text-to-image, text generation
Agentic AI: Multi-agent systems, reinforcement learning, autonomous agents
Technical Skills - Development & Infrastructure
Programming: Python (expert), R, Java/Scala, JavaScript/TypeScript
Cloud Platforms: AWS (SageMaker, EC2, S3, Lambda), Azure ML, or Google Cloud AI
Databases: SQL (PostgreSQL, MySQL), NoSQL (MongoDB, Cassandra, DynamoDB)
Full-Stack Development: React/Vue.js, Node.js, FastAPI, Flask, Docker, Kubernetes
MLOps: MLflow, Kubeflow, Model versioning, A/B testing frameworks
Big Data: Spark, Hadoop, Kafka, streaming data processing
Preferred Qualifications
Experience with vector databases and embeddings (Pinecone, Weaviate, Chroma)
Knowledge of LangChain, LlamaIndex, or similar LLM frameworks
Experience with model compression and edge deployment
Familiarity with distributed computing and parallel processing
Experience with computer vision and NLP applications
Knowledge of federated learning and privacy-preserving ML
Experience with quantum machine learning
Expertise in MLOps and production ML system design
Key Competencies
Technical Excellence
Strong mathematical foundation in statistics, linear algebra, and optimization
Ability to implement algorithms from research papers
Experience with model interpretability and explainable AI
Knowledge of ethical AI and bias detection/mitigation
Problem-Solving & Innovation
Strong analytical and critical thinking skills
Ability to translate business requirements into technical solutions
Creative approach to solving complex, ambiguous problems
Experience with rapid prototyping and experimentation
Communication & Leadership
Excellent written and verbal communication skills
Ability to explain complex technical concepts to diverse audiences
Strong project management and organizational skills
Experience mentoring and leading technical teams
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