Drishti Group logoD
New Delhi, Delhi-10, India-101Full Time1–3 yrs
Machine LearningSQLDockerModel DeploymentPyTorchTensorFlow
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Ai Engineer at Drishti Group is a full time role based in New Delhi, Delhi-10, India-101. The listing asks for 1–3 yrs of experience. Listed skills: Machine Learning, SQL, Docker, Model Deployment, PyTorch and TensorFlow. It was published on 8 September 2026 and was open at last check.

Ai Engineer at Drishti Group — key details
RoleAi Engineer
CompanyDrishti Group
LocationNew Delhi, Delhi-10, India-101
Employment typeFull Time
Experience asked1–3 yrs
Skills listedMachine Learning, SQL, Docker, Model Deployment, PyTorch and TensorFlow
Published8 September 2026
StatusOpen at last check

About Drishti IAS

Drishti IAS is one of India’s most trusted institutions for UPSC Civil Services preparation, serving lakhs of aspirants through classroom programmes, a bilingual (Hindi and English) digital platform, daily current-affairs content, test series and video learning. We are bringing intelligent, reliable and multilingual learning experiences to our students and making our editorial, operations and support workflows dramatically more efficient through AI.

About the Role

We are looking for a hands-on AI Engineer with 1–3 years of experience who can take LLM-based systems from idea to production. You will split your time roughly equally between two tracks: student-facing AI products such as doubt-resolution assistants, answer-writing evaluation, personalised study aids and voice/vision-enabled learning; and internal automation that accelerates content creation, data pipelines and business operations. You will own the full stack of an AI feature: data, retrieval, models, serving, evaluation and monitoring.

Key Responsibilities

  • LLM & RAG systems: Design, build and maintain retrieval-augmented pipelines over Drishti’s large content corpus, including notes, current affairs, PYQs and test series. Own chunking, embedding, hybrid search, re-ranking and citation quality, and set up offline/online evaluation and production monitoring for accuracy, hallucination and latency.
  • Agentic workflows & automation: Build tool-using agents with LangChain/LangGraph or similar SDKs, expose capabilities via MCP, and automate editorial, marketing and support workflows on platforms such as n8n, Dify or Zapier.
  • Inference & deployment: Deploy and serve open-weight models on GPU infrastructure using vLLM, Transformers or llama.cpp. Handle quantisation, batching, KV-cache and throughput, latency and cost trade-offs.
  • Fine-tuning: Create high-quality datasets from in-house material and fine-tune LLMs using SFT, LoRA, QLoRA and preference tuning for domain, tone and Hindi-English tasks. Evaluate rigorously against baselines before release.
  • Multimodal integration: Integrate speech tools for STT/TTS, including Whisper and ElevenLabs, for voice-based learning and dictation. Integrate image-generation and editing models, including diffusion models and Nano Banana, for content and creative workflows.
  • Data engineering: Build pipelines that ingest and process large volumes of text, audio and long documents. Design schemas and queries across PostgreSQL/MySQL and vector databases such as pgvector, Qdrant and Milvus.
  • System design & reliability: Design scalable, observable services with clean APIs. Add logging, tracing, cost tracking and guardrails. Apply secure-by-default practices, including prompt-injection defences, secrets management and least-privilege access for tools and agents.
  • Collaboration: Work closely with subject-matter experts, editors and product stakeholders, and document systems clearly.

Required Skills & Experience

  • Python: Strong, production-quality Python skills, including typing, async, packaging and testing. Comfortable with FastAPI or a similar framework.
  • Automation platforms: Hands-on experience with n8n, Dify, Zapier or comparable low-code/workflow tools, including custom nodes and webhooks.
  • RAG end-to-end: Experience building, evaluating and monitoring RAG systems using RAGAS, custom evaluations or LLM-as-a-judge approaches. Strong SQL skills with PostgreSQL/MySQL and practical experience with vector databases.
  • Agent frameworks: Experience with LangChain, LangGraph or similar SDKs/ADKs, such as Google ADK, OpenAI Agents SDK or Pydantic AI. Knowledge of function/tool calling and Model Context Protocol (MCP).
  • System design: Ability to design and reason about services, queues, caching, data flow and failure modes for AI applications.
  • Inference engineering: Experience deploying local/open-weight models using vLLM, Transformers or llama.cpp. Knowledge of GPUs, VRAM budgeting, quantisation formats such as GGUF, AWQ and GPTQ, and CUDA basics is a plus.
  • Fine-tuning: End-to-end experience in dataset construction and cleaning, training using PEFT, TRL, Unsloth or Axolotl, and evaluation.
  • Vision & voice models: Experience integrating diffusion/image models, such as Stable Diffusion, FLUX and Nano Banana, along with STT/TTS models, such as Whisper, ElevenLabs and Indic TTS, into applications.
  • Large-scale & long-context data: Experience handling high-volume corpora and long sequences through batching, streaming, context management and long-context model usage.
  • Agentic systems: Experience with multi-step agents, tool usage, memory, planning loops and safe execution boundaries.
  • ML/DL fundamentals: Basic understanding of machine learning and deep learning, including training loops, loss functions, embeddings, transformers and evaluation metrics.

Good to Have

  • Experience with Hindi or other Indic-language NLP, transliteration and multilingual embeddings.
  • Experience with Docker, Linux, CI/CD, Git workflows and cloud GPU providers such as AWS, GCP, Azure or RunPod.
  • Familiarity with LLM application observability tools, such as Langfuse, LangSmith and Arize Phoenix, and prompt/version management.
  • Awareness of AI security, including OWASP Top 10 for LLM Applications, prompt-injection and data-exfiltration risks, output filtering and red-teaming.
  • Open-source contributions, personal projects, blogs, Kaggle work or hackathon experience in GenAI.

Who You Are

  • You are ship-oriented and prefer a working prototype today over a perfect design next month, followed by iteration using evaluations.
  • You are curious and current on model releases, benchmarks and tooling, and understand when not to use an LLM.
  • You are rigorous about quality, measure before making claims, and treat hallucinations, latency and cost as bugs.
  • You are a clear communicator who can explain technical trade-offs to non-technical educators and stakeholders.

What We Offer

  • Ownership of AI products used by lakhs of UPSC aspirants, with real-world impact on learning outcomes.
  • Access to dedicated GPU infrastructure, a rich proprietary content corpus and freedom to experiment with open-weight models.
  • Competitive compensation, a learning budget and a growth path towards Senior AI Engineer or AI Lead roles.
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Ai Engineer at Drishti Group — questions answered

What does the Ai Engineer role at Drishti Group pay?

Drishti Group does not publish a salary on this Ai Engineer listing, so OnJob shows no figure for it rather than an estimate. For what this role pays across the market, the OnJob salary guides aggregate the live listings that do disclose pay.

Where is the Ai Engineer role at Drishti Group based?

Drishti Group lists this Ai Engineer role in New Delhi, Delhi-10, India-101, advertised as full time work at that location and asking for 1–3 yrs of experience. Larger employers sometimes cover several sites under one city name, so confirm the exact office with Drishti Group before you apply.

What skills does the Ai Engineer role at Drishti Group require?

The Ai Engineer at Drishti Group listing names Machine Learning, SQL, Docker, Model Deployment, PyTorch and TensorFlow. Those are the skills the employer put on the posting itself, so they are the ones worth matching in your profile and covering first in an interview.

How much experience do you need for the Ai Engineer role at Drishti Group?

Drishti Group asks for 1–3 yrs of experience on this Ai Engineer posting, alongside Machine Learning, SQL and Docker. Employers commonly consider candidates slightly under a stated band when the listed skills line up.

Is the Ai Engineer role at Drishti Group still open?

The Ai Engineer posting at Drishti Group was open at OnJob's last check of the employer's careers page, having been published on 8 September 2026. OnJob re-checks source listings on each build and marks a role closed once it disappears, but listings can close without notice, so the employer's own page is the final word.

How do you apply for the Ai Engineer role at Drishti Group?

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