Actively Hiring

Lead AI Engineer

Location

Bangalore, Karnataka

Work Mode

On-site

Experience

5-10 Yrs

Salary Range

INR 50-85 LPA

Job Type

Permanent

Openings

1 position

Job Description

Hiring for: San Francisco-based Construction AI-Robotics company

Role: Lead AI Engineer

Positions: 1

Experience: 5 to 10 years

Location(s): Bangalore

Type: On-site / Permanent

Salary: Up to INR 85 LPA


About the Role

As a core member of the AI Research team you'll turn cutting-edge, vision-language and diffusion advances into robust real-time systems that see reason and act on dynamic construction sites.

This is a production-heavy, engineering-heavy position.


Key Responsibilities

  • Research & innovate diffusion-based generative models for photorealistic wall-surface simulation, defect synthesis and domain adaptation.
  • Architect and train Vision-Language Models (VLMs) and Vision-Language Action Models (VLA) objectives that connect textual work orders, CAD plans and sensor data to pixel-level understanding.
  • Lead development of auto-annotation pipelines (active learning, self-training, synthetic data) that scale to millions of frames and point-clouds with minimal human effort.
  • Optimize and compress models (INT8, LoRA, distillation) for deployment on Jetson-class edge devices under ROS 2.
  • Own the full lifecycle—problem definition, literature review, prototyping, offline/online evaluation and production hand-off to perception & controls teams.
  • Publish internal tech reports and external conference papers; mentor interns and junior engineers.


Qualifications & Skills

  • 8+ years in deep-learning R&D or Ph.D./M.S. in CS, EE, Robotics or related field with strong publication record.
  • Demonstrated expertise in diffusion models (DDPM, LDM, ControlNet) and multimodal transformers / VLMs (CLIP, BLIP-2, LLaVA, Flamingo).
  • Proven success building large-scale data-centric AI workflows—active learning, pseudo-labeling, weak supervision.
  • Advanced proficiency in Python, PyTorch (or JAX), experiment tracking and scalable training (PyTorch Lightning, DeepSpeed, Ray).
  • Familiarity with edge-AI runtimes (TensorRT, ONNX Runtime), and CUDA / C++ performance tuning.
  • Strong mathematical foundation (probability, information theory, optimization) and ability to translate theory into production code.
  • Bonus: experience with synthetic data generation in Isaac Sim or robotics perception stacks (ROS2, Nav2, MoveIt 2, Open3D).
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