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Trinetra AI is building a next-generation Generative AI platform for filmmaking and content creation. We seek an AI Engineer to design, implement, and optimize AI systems across text, image, video, and audio modalities, translating research into scalable production capabilities.
You will work on LLMs, multimodal architectures, model training and deployment, with a focus on performance, latency, and cost optimization in a fast-paced startup setting.
Industry: Generative AI | SaaS | DeepTech | Media Technology
Location: Noida / Delhi NCR
Employment Type: Full-time
Experience: 3–7 Years
Function: AI / Generative AI Engineering
Industry: Generative AI | SaaS | DeepTech | Media Technology
Trinetra AI is building a next-generation Generative AI platform for filmmaking and content creation, designed for creators, filmmakers, production houses, studios, marketers and enterprises.
Our vision is to use AI across the complete content creation lifecycle — from ideation, scripting and storyboarding to character creation, image/video generation, voice, dubbing, music, editing and final production.
We are building at the intersection of Generative AI, multimodal intelligence, video technology and SaaS, with a strong focus on converting cutting-edge AI research into scalable products.
We are looking for a hands‑on AI Engineer who can design, build, integrate, fine‑tune and optimize Generative AI systems.
This is not a traditional ML or analytics role. We need an engineer who understands models deeply and can take capabilities from research and experimentation to production deployment.
You will work across LLMs, VideoGen, ImageGen, Audio/Voice AI, multimodal models, AI agents, model serving and GPU optimization.
The ideal candidate should be able to take a research paper, open‑source model or emerging AI technique and ask:
How do we turn this into a scalable, production‑grade product?
Build production‑grade LLM applications covering:
Strong understanding of Transformers, attention mechanisms, tokenization, embeddings and inference is expected.
Work with modern Generative Media architectures and techniques including:
Build pipelines for:
Work closely with engineering, product, data and content teams to convert large media datasets into high‑quality AI training datasets.
Build measurable evaluation frameworks across:
Optimize models using techniques such as quantization, batching, model compilation, caching, mixed precision, parallel inference and GPU memory optimization.
Work with GPU‑based training and inference environments.
Understanding of the following is valuable:
Convert AI capabilities into scalable services.
Build:
Strong hands‑on experience with Python + FastAPI is preferred.
Build workflows where multiple AI models and agents collaborate.
A typical Trinetra workflow could be:
Idea → Script → Scene Breakdown → Storyboard → Character → Image → Video → Voice → Music → Editing → Final Output
Work across model routing, tool calling, workflow engines, state management, retries, fallbacks and human‑in‑the‑loop systems.
You should be comfortable:
Our engineering cycle is:
Research → Experiment → Prototype → Benchmark → Optimize → Production
Experience with:
Exposure to AWS, GCP or Azure AI infrastructure is valuable.
Working knowledge of PostgreSQL, MongoDB, Redis, Vector DBs, Docker and Kubernetes would be an advantage.
We are looking for AI builders, not just API integrators.
Knowing how to consume an AI API is useful. Understanding what happens inside the model and being able to fine‑tune, modify, evaluate, optimize and deploy it independently is significantly more valuable.
You should be comfortable working in an environment where the technology stack can evolve rapidly as better models and architectures emerge.
Experience with Generative AI, AI SaaS/PaaS, DeepTech, MediaTech, Video AI or multimodal AI is highly relevant.
You should be able to:
Generative AI is changing how films, series, advertising and digital content are created.
Trinetra AI is building across the complete content creation stack by bringing together LLMs, image generation, video generation, character intelligence, voice, dubbing, music and AI orchestration into one platform.
You will work on real‑world challenges involving multimodal foundation models, VideoGen, AI filmmaking, LLMs, agents, large‑scale media datasets, model fine‑tuning, GPU infrastructure and production AI systems.