Senior Machine Learning Engineer Hybrid

Year    MH, IN, India

Job Description

Lead the design, development, and scale of our AI Worker platform -- a multimodal, agentic system handling voice, vision, and language in real time -- while mentoring junior engineers and collaborating across teams.

Company details



GoCommotion builds AI Workers for the future of customer experience (CX). We create intelligent agents that engage across channels, listen to asynchronous events, and continuously improve.

Website: https://www.gocommotion.com/

Requirements



Bachelor's or Master's in Computer Science, AI/ML, or related field Expert in Python; strong grasp of data structures, algorithms, OS, networking fundamentals Competitive coding / problem-solving track record is a plus 3+ years' experience in production ML systems Deep knowledge of LLMs (architecture, fine?tuning, LoRA / PEFT / instruction tuning) Experience in multimodal ML (text, vision, voice) Hands?on with Voice AI: ASR, TTS, speech embeddings, latency optimization Experience building RAG pipelines (embed models, vector DBs, hybrid retrieval) Strong foundation in reinforcement learning (RLHF, policy optimization, continual learning) Proficient with PyTorch, TensorFlow, scikit?learn Familiarity with vLLM, HuggingFace, Agno, LangFlow, CrewAI, LoRA frameworks Experience with vector stores (Pinecone, Weaviate, FAISS, QDrant) and orchestration Experience in distributed training, large?scale pipelines, inference latency optimization Experience deploying ML in cloud (AWS / GCP / Azure), containers, Kubernetes, CI/CD Ownership mindset, ability to mentor, high resilience, thrive in startup environment Currently employed at a product-based organisation

Responsibilities



Build AI systems powering AI Workers -- agentic, persistent, multimodal across voice, text, image Lead full ML lifecycle: data pipelines, architecture, training, deployment, monitoring Design speech?to?speech models (without text intermediary) for low?latency voice interaction Drive LLM fine?tuning and adaptation strategies (LoRA, PEFT, instruction tuning) Architect and optimize RAG pipelines for live grounding of LLMs Advance multimodal systems integrating language, vision, and speech Apply reinforcement learning (online/offline) for continuous improvement Collaborate with infra and systems engineers for GPU clusters, cloud, edge integration Translate research ideas into production innovations Mentor junior ML engineers, define best practices, shape technical roadmap

Job Details



Location: Hybrid -- Mumbai, Bengaluru, Chennai, India

Interview process



Screening / HR round Technical round(s) -- coding, system design, ML case studies ML / research deep dive Final / leadership round

Important Note



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Job Detail

  • Job Id
    JD4404388
  • Industry
    Not mentioned
  • Total Positions
    1
  • Job Type:
    Full Time
  • Salary:
    Not mentioned
  • Employment Status
    Permanent
  • Job Location
    MH, IN, India
  • Education
    Not mentioned
  • Experience
    Year