Artificial Intelligence Engineer

Onified.ai

Gurugram District

On-site

INR 700,000 - 1,200,000

Full time

14 hours ago
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Job summary

Onified.ai is hiring an AI Engineer (0–3 years) to build practical AI/ML solutions across enterprise problems in Gurugram. You will work hands-on with Generative AI, LLMs, RAG, and AI-enabled data workflows, translating prototypes into production-grade components.

You should have strong fundamentals in AI/ML, Python programming, and hands-on project experience through academics, internships, or professional work. We invest in your learning and growth.

Qualifications

  • Understanding of core Machine Learning concepts, supervised/unsupervised learning, training, validation, overfitting, metrics, feature engineering, etc.
  • Understanding of Generative AI and Large Language Models (LLMs)
  • Hands-on AI/ML project experience through academics, internships, research, personal projects or professional work
  • Ability to work with data using libraries such as NumPy and Pandas
  • Exposure to ML frameworks such as scikit-learn, PyTorch or TensorFlow
  • Basic understanding of APIs, databases and Git
  • Strong logical, analytical and problem-solving ability
  • A relevant degree or coursework in Computer Science, AI, Machine Learning, Data Science, Mathematics, Statistics, Engineering or a related quantitative field is preferred.

Responsibilities

  • Work on AI agents and Agentic AI workflows
  • Develop enterprise copilots and intelligent assistants
  • Implement Retrieval-Augmented Generation (RAG)
  • Build enterprise search and knowledge systems
  • Create natural-language interfaces for enterprise data
  • Develop AI-powered workflow automation
  • Provide evaluation, guardrails and reliability of AI systems

Skills

Core ML concepts
Generative AI & LLMs
Hands-on AI/ML projects
Strong problem-solving
Analytical thinking

Education

Bachelors in Computer Science/AI/ML/DS/Math/Engineering

Tools

NumPy
Pandas
scikit-learn
PyTorch
TensorFlow
APIs
Databases
Git
Docker
FastAPI

Job description

The Opportunity

We’re looking for an AI Engineer (0–3 years) who has a strong foundation in AI/ML and, more importantly, loves building things with it.


This is not a role where you need to arrive knowing every new AI framework. The field is changing too quickly for that.


But you do need the fundamentals.


You should already understand AI/ML concepts, be comfortable programming in Python, and have actually built AI/ML projects through academics, internships, research, personal projects or professional work.


From there, we’ll help you go deeper.


You’ll get the opportunity to work hands‑on with Generative AI, LLMs, RAG, agents, enterprise data and emerging AI technologies and learn how to take AI from experimentation to real enterprise products.


We’ll invest in your learning, but we’re looking for people who have already made a serious start.


What You’ll Build

Depending on the problem, you could work on:



  • AI agents and Agentic AI workflows

  • Enterprise copilots and intelligent assistants

  • Retrieval‑Augmented Generation (RAG)

  • Enterprise search and knowledge systems

  • Natural‑language interfaces for enterprise data

  • AI‑powered workflow automation

  • Recommendations and decision support

  • Multimodal AI applications

  • Evaluation, guardrails and reliability of AI systems


What You Must Have

For this role, these are essential:



  • Understanding of core Machine Learning concepts, supervised/unsupervised learning, training, validation, overfitting, metrics, feature engineering, etc.

  • Understanding of Generative AI and Large Language Models (LLMs)

  • Hands‑on AI/ML project experience through academics, internships, research, personal projects or professional work

  • Ability to work with data using libraries such as NumPy and Pandas

  • Exposure to ML frameworks such as scikit‑learn, PyTorch or TensorFlow

  • Basic understanding of APIs, databases and Git

  • Strong logical, analytical and problem‑solving ability


A relevant degree or coursework in Computer Science, AI, Machine Learning, Data Science, Mathematics, Statistics, Engineering or a related quantitative field is preferred.


Strong candidates from other academic backgrounds are welcome if they can demonstrate equivalent AI/ML knowledge and hands‑on work.


Good to Have

You don’t need to know all of these. We’ll help you learn many of them:



  • RAG, embeddings and semantic search

  • AI Agents / Agentic AI

  • Prompt engineering and structured outputs

  • LangChain, LangGraph or LlamaIndex

  • FastAPI

  • Open‑source LLMs

  • Model evaluation and AI testing

  • Docker

  • AWS or other cloud platforms


What Matters to Us

We’re not looking for someone who has simply completed a few AI tutorials.


We’re looking for someone who is technically grounded, curious and loves experimenting and building.


Maybe you’ve trained your own ML models. Maybe you’ve built a RAG application, experimented with open‑source models, created an AI agent, worked on a research project, or built something completely different.


We’d like to see it.


Your experience can be academic, personal or professional. What matters is that you’ve gone beyond learning the theory and actually tried to make AI work.


Why Join Onified.ai?

You won’t be joining to maintain one ML model or spend your first year waiting for meaningful AI work.


You’ll have the opportunity to work across real enterprise problems and explore how AI can fundamentally change the way businesses operate.


You’ll get to:



  • Build real AI products from the beginning

  • Work with LLMs, agents, RAG and emerging AI technologies

  • Experiment and prototype new ideas

  • Work with complex enterprise data and workflows

  • Take ideas from prototype towards production

  • Learn alongside Product, Engineering and domain teams

  • Develop rapidly as the AI landscape evolves


We can teach you our stack, frameworks and approaches. We can’t teach curiosity, problem‑solving ability or the desire to build.


Bring the fundamentals and the mindset. We’ll help you build depth.


Come build the future of Enterprise Resource Intelligence (ERI) with us.

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