Data Scientist

Hiringhood

Haryana

On-site

INR 1,800,000 - 3,200,000

Full time

8 days ago
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Job summary

Hiringhood is seeking an AI/ML systems engineer to design and deploy production-ready AI applications. You will build scalable pipelines, optimize model performance, and implement robust evaluation strategies for real-world NLP use cases.

You will collaborate with engineering and business teams to define use cases, integrate APIs, and ensure reliability across deployed AI solutions.

Qualifications

  • 3–4 years of experience building AI/ML applications with strong Python and software engineering skills.
  • Strong proficiency in Python.
  • Understanding of AI system design, evaluation, monitoring, and performance optimization.
  • Experience developing, deploying, and maintaining production AI applications.
  • Strong software engineering fundamentals, including clean code, modular design, debugging, and testing.
  • RAG architectures.
  • Experience with machine learning frameworks such as TensorFlow, PyTorch, or Scikit-learn.
  • Good understanding of NLP concepts.
  • Familiarity with API development and integration.
  • Ability to work independently as well as in collaborative team environments.

Responsibilities

  • Design scalable, reliable AI systems with a focus on production readiness, maintainability, and performance.
  • Perform root cause analysis and debugging of AI pipelines to improve accuracy, consistency, and reliability.
  • Develop automated evaluation, validation, and testing strategies for AI applications.
  • Design reliable LLM workflows using structured outputs, validation, retrieval, and business rules.
  • Create and maintain RAG pipelines and AI agent frameworks.
  • Perform data analysis, model evaluation, and performance optimization.
  • Develop APIs and integrate AI solutions into existing products and platforms.
  • Collaborate with cross-functional teams including engineering, and business stakeholders to define AI use cases and deliver solutions.
  • Monitor, troubleshoot, and continuously improve deployed AI systems.

Skills

Python
AI system design
Production AI
Software engineering fundamentals
RAG architectures
NLP concepts
API development
Independent / collaborative work

Tools

TensorFlow
PyTorch
Scikit-learn

Job description

Must have
  • 3–4 years of experience building AI/ML applications with strong Python and software engineering skills.
  • Strong proficiency in Python.
  • Understanding of AI system design, evaluation, monitoring, and performance optimization.
  • Experience developing, deploying, and maintaining production AI applications.
  • Strong software engineering fundamentals, including clean code, modular design, debugging, and testing.
  • RAG architectures
  • Experience with machine learning frameworks such as TensorFlow, PyTorch, or Scikit-learn.
  • Good understanding of NLP concepts.
  • Familiarity with API development and integration.
  • Ability to work independently as well as in collaborative team environments.
Good to have
  • Experience with vector databases such as Pinecone, Weaviate, FAISS, ChromaDB.
  • Knowledge of cloud platforms such as AWS, Azure, or GCP.
  • Experience with Docker, and deployment pipelines.
  • Exposure to fintech products, platforms, or domain-specific use cases.
Roles & Responsibilities
  • Design scalable, reliable AI systems with a focus on production readiness, maintainability, and performance.
  • Perform root cause analysis and debugging of AI pipelines to improve accuracy, consistency, and reliability.
  • Develop automated evaluation, validation, and testing strategies for AI applications.
  • Design reliable LLM workflows using structured outputs, validation, retrieval, and business rules.
  • Create and maintain RAG pipelines and AI agent frameworks.
  • Perform data analysis, model evaluation, and performance optimization.
  • Develop APIs and integrate AI solutions into existing products and platforms.
  • Collaborate with cross-functional teams including engineering, and business stakeholders to define AI use cases and deliver solutions.
  • Monitor, troubleshoot, and continuously improve deployed AI systems.
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