MacroHire
Website:
macrohire.in
Job details:
Designation- Principal Engineer- AI/ML
Exp- 10-15 yrs
Location- Hyderabad (Hybrid mode)
Educational Qualification- B.E/B.Tech/M.Tech/M.E degree in Computer Science or equivalent
JD
- -10-15 years of industry experience in applied AI/GenAI, designing and developing scalable enterprise level solution
- sExperience in architecting and building large, highly scalable systems & software applications (e.g., well-designed APIs, high volume data pipelines, efficient algorithms, agentic workflows, prompt orchestration
- )Strong programming (Python / C++ or equivalent) and data engineering skill
- sDeep understanding of Generative AI best practices (e.g., prompt engineering, RAG, agentic design, model fine-tuning, optimization), LLMs, multimodal models, and deep learning basics
- .Experience with these technologies: OpenAI GPT, Llama, Hugging Face Transformers, LangChain, DeepSpeed, Ray, Kubernetes, Spark, Kafka (or equivalent)
- .Industry experience building end-to-end GenAI infrastructure and/or building and productionizing Generative AI models, agents, and workflow
- sExperience with MLOps/LLMOps practices and tools (e.g., MLflow, Weights & Biases, DVC, SageMaker, Vertex AI
- )Design, implement and integrate the next generation of Generative AI infrastructure to empower other Data Scientists and AI engineers to build GenAI models and agents that make real-time decisions
- .You will collaborate with other engineers and data scientists to create optimal experiences on the Core GenAI platform, including but not limited to: prompt libraries, agentic orchestration, the real-time serving layer, and the offline training syste
- mStrong collaboration and communication skills, both verbal and writte
- nBring a deep empathy for customer needs and insights as well as an intuitive grasp of the business problems we’re trying to solve
.
Good to hav
- e:Experience with traditional machine learning and deep learning frameworks and algorithms (e.g., RNNs, CNNs, Transformers, GAN
- s)Knowledge of reinforcement learning, transfer learning, and meta-learning concep
- tsHands-on experience with TensorFlow, PyTorch, JAX, Ker
- asFamiliarity with data labeling platforms, ML model monitoring and evaluation too
- lsExperience with MLOps/LLMOps practices and tools (e.g., MLflow, Weights & Biases, DVC, SageMaker, Vertex A
- I)Exposure to model safety, bias detection, explainability, and responsible AI practic
- esExperience with cloud platforms (AWS, Azure, GCP) for scalable AI deploymen
- tsContributions to open source GenAI/ML projects or research publicatio
ns
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