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Aurigait

SDE II - ML/AI Engineer

Jaipur · Mid Level

Expect moderate competitionVerified listingPosted 26d ago

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86Overall
64Skills
97Experience

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What we know about this role

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Skills required

40 listed
Triton Inference ServerCI/CDHugging FaceVector DatabaseSupervised LearningAWS SageMakerGoogle Vertex AIPrompt Engineering+32 more
Triton Inference ServerCI/CDHugging FaceVector DatabaseSupervised Learning

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Job description

Job Summary
We’re seeking a hands-on GenAI & Computer Vision Engineer with 3–5 years of experience delivering production-grade AI solutions. You must be fluent in the core libraries, tools, and cloud services listed below, and able to own end-to-end model development—from research and fine-tuning through deployment, monitoring, and iteration. In this role, you’ll tackle domain-specific challenges like LLM hallucinations, vector search scalability, real-time inference constraints, and concept drift in vision models.

Key Responsibilities

Generative AI & LLM Engineering
  • Fine-tune and evaluate LLMs (Hugging Face Transformers, Ollama, LLaMA) for specialized tasks
  • Deploy high-throughput inference pipelines using vLLM or Triton Inference Server
  • Design agent-based workflows with LangChain or LangGraph, integrating vector databases (Pinecone, Weaviate) for retrieval-augmented generation
  • Build scalable inference APIs with FastAPI or Flask, managing batching, concurrency, and rate-limiting

Computer Vision Development
  • Develop and optimize CV models (YOLOv8, Mask R-CNN, ResNet, EfficientNet, ByteTrack) for detection, segmentation, classification, and tracking
  • Implement real-time pipelines using NVIDIA DeepStream or OpenCV (cv2); optimize with TensorRT or ONNX Runtime for edge and cloud deployments
  • Handle data challenges—augmentation, domain adaptation, semi-supervised learning—and mitigate model drift in production

MLOps & Deployment
  • Containerize models and services with Docker; orchestrate with Kubernetes (KServe) or AWS SageMaker Pipelines
  • Implement CI/CD for model/version management (MLflow, DVC), automated testing, and performance monitoring (Prometheus + Grafana)
  • Manage scalability and cost by leveraging cloud autoscaling on AWS (EC2/EKS), GCP (Vertex AI), or Azure ML (AKS)

Cross-Functional Collaboration
  • Define SLAs for latency, accuracy, and throughput alongside product and DevOps teams
  • Evangelize best practices in prompt engineering, model governance, data privacy, and interpretability
  • Mentor junior engineers on reproducible research, code reviews, and end-to-end AI delivery

Required Qualifications
You must be proficient in at least one tool from each category below:
  • LLM Frameworks & Tooling:
Hugging Face Transformers, Ollama, vLLM, or LLaMA
  • Agent & Retrieval Tools:
LangChain or LangGraph; RAG with Pinecone, Weaviate, or Milvus
  • Inference Serving:
Triton Inference Server; FastAPI or Flask
  • Computer Vision Frameworks & Libraries:
PyTorch or TensorFlow; OpenCV (cv2) or NVIDIA DeepStream
  • Model Optimization:
TensorRT; ONNX Runtime; Torch-TensorRT
  • MLOps & Versioning:
Docker and Kubernetes (KServe, SageMaker); MLflow or DVC
  • Monitoring & Observability:
Prometheus; Grafana
  • Cloud Platforms:
AWS (SageMaker, EC2/EKS) or GCP (Vertex AI, AI Platform) or Azure ML (AKS, ML Studio)
  • Programming Languages:
Python (required); C++ or Go (preferred)
Additionally:
  • Bachelor’s or Master’s in Computer Science, Electrical Engineering, AI/ML, or a related field
  • 3–5 years of professional experience shipping both generative and vision-based AI models in production
  • Strong problem-solving mindset; ability to debug issues like LLM drift, vector index staleness, and model degradation
  • Excellent verbal and written communication skills

Typical Domain Challenges You’ll Solve
  • LLM Hallucination & Safety: Implement grounding, filtering, and classifier layers to reduce false or unsafe outputs
  • Vector DB Scaling: Maintain low-latency, high-throughput similarity search as embeddings grow to millions
  • Inference Latency: Balance batch sizing and concurrency to meet real-time SLAs on cloud and edge hardware
  • Concept & Data Drift: Automate drift detection and retraining triggers in vision and language pipelines
  • Multi-Modal Coordination: Seamlessly orchestrate data flow between vision models and LLM agents in complex workflows

About Company
Hi there! We are Auriga IT.
We power businesses across the globe through digital experiences, data and insights. From the apps we design to the platforms we engineer, we're driven by an ambition to create world-class digital solutions and make an impact. Our team has been part of building the solutions for the likes of Zomato, Yes Bank, Tata Motors, Amazon, Snapdeal, Ola, Practo, Vodafone, Meesho, Volkswagen, Droom and many more.
We are a group of people who just could not leave our college-life behind and the inception of Auriga was solely based on a desire to keep working together with friends and enjoying the extended college life.
Who Has not Dreamt of Working with Friends for a Lifetime

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Our Website - https://aurigait.com/

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Applicants who checked fit first are 3.1× more likely to hear back

Your match scoreCalculated · locked
86Overall
64Skills
97Experience

Your score for this role already exists

ASAI compared this JD against 41 signals - skills, seniority, domain, stack overlap etc. Add a resume and it unlocks in about 30 seconds.

No credit card · 1 tap with Google

Free · no signup

Get tomorrow's jobs before you have to search

Daily job drops, skill trends and free resources - posted straight to the group. Leave any time.

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No spam. Just jobs and resources.

Why people use ASAI

Someone shared one job with you. ASAI keeps finding the rest.

  • Scored, not searched. Every role ranked against your actual profile.

  • Alerts as often as hourly. Reach new roles while the pile is still small.

  • Skill gaps, spelled out. See exactly which requirements you don't meet yet.

  • Verified jobs, only. Say no to ghost jobs. Your time deserves respect.

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