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Data Scientist - INDIA

Remote / Online - Candidates ideally in
Lubbock, Lubbock County, Texas, 79401, USA
Listing for: Vytwo Technologies Inc.
Remote/Work from Home position
Listed on 2026-05-30
Job specializations:
  • IT/Tech
    Machine Learning/ ML Engineer, AI Engineer, Data Scientist, Data Engineer
Salary/Wage Range or Industry Benchmark: 100000 - 125000 USD Yearly USD 100000.00 125000.00 YEAR
Job Description & How to Apply Below

Consultants local to INDIA are eligible. Category:
Data Science – Structured Data / Text Data (NLP & GenAI).

Role

Data Scientist - INDIA

Location:

Hyderabad, INDIA

About

The Role

We are seeking a highly skilled Data Scientist (3–7 years of experience) to join our team and work across two major data science domains:

  • Structured Data (80–90%) – Predictive analytics, forecasting, cost estimation, likelihood modeling, and batch‑oriented machine learning pipelines.
  • Text / Unstructured Data (NLP & GenAI) – Building low‑latency real‑time systems using deep learning, LLMs, prompt engineering, and agentic AI frameworks.

This role requires strong expertise in Big Data processing, modern ML tools, and the ability to build scalable, production‑ready data science solutions.

Key Responsibilities Structured Data – Machine Learning & Analytics
  • Build, deploy, and optimize ML models for predictive analytics, forecasting, classification, and regression.
  • Perform large‑scale feature engineering using PySpark and Big Data tools.
  • Work on batch pipelines, model versioning, and experiment tracking.
  • Develop cost estimation and risk/likelihood models using statistical and ML techniques.
Text Data / NLP / GenAI
  • Build NLP pipelines using deep learning frameworks such as PyTorch, Tensor Flow, or similar.
  • Develop real‑time, low‑latency inference systems for text classification, embeddings, semantic search, summarization, and retrieval.
  • Create prompts, context graphs, and agentic workflows for LLM‑based systems.
  • Apply knowledge of prompt engineering, context engineering, and autonomous agent frameworks to production systems.
Core Data Science Engineering & MLOps
  • Work in Databricks for ETL, feature engineering, ML training, and orchestration.
  • Use Azure services for model deployment, data pipelines, and infrastructure.
  • Collaborate using Git‑based workflows; leverage tools like Git Hub Copilot, Claude Code, etc.
  • Implement model monitoring, observability, drift detection, and performance tracking.
Required Skills & Experience Core Skills
  • Strong hands‑on experience with Databricks (Delta Lake, MLflow, Job Orchestration).
  • Excellent PySpark skills for large‑scale distributed data processing.
  • Proficiency in Azure cloud services (ADF, Azure ML, AKS, Databricks on Azure).
  • Strong understanding of ML algorithms, statistical methods, and data analysis.
  • Experience with deep learning frameworks:
    • Py Torch
    • Tensor Flow
    • Transformers (Hugging Face)
  • Experience with model monitoring and ML observability.
  • Ability to write clean, optimized code and leverage AI code assistants.
NLP / GenAI Specific Skills
  • Prompt engineering (task prompts, chain of thought, tool calling, retrieval prompts).
  • Context engineering (retrieval pipelines, RAG, memory management, context structuring).
  • Knowledge of LLM‑based agentic frameworks (Lang Chain, Semantic Kernel, CrewAI, Auto Gen, etc.).
  • Experience with vector databases and embedding models is a plus.
Good to Have Skills
  • Experience with containerization (Docker, Kubernetes, AKS).
  • Experience deploying models to production (REST APIs, real‑time endpoints).
  • Knowledge of streaming technologies (Kafka, Event Hub, Spark Streaming).
  • Understanding of CI/CD for ML (Azure Dev Ops / Git Hub Actions).
Who You Are
  • A problem solver who is comfortable working with both structured and unstructured data.
  • Someone who enjoys using modern AI tools to accelerate development.
  • A data scientist who writes clean, production‑grade code.
  • A collaborator who thrives in cross‑functional teams and fast‑paced environments.

Flexible work from home options available.

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