Sigmoid Analytics is a leading Data solutions company backed by Sequoia Capital. We offer best in- end-to-end data value chain spanning across Data Science, Data Engineering and Data Ops. With data and technology at the core of our solutions, we are solving some of the toughest problems out there. Our culture is modelled around expertise and mutual respect with a team first mindset. You’ll work with teams that push the boundaries of what-is-possible and build solutions that energize and inspire.
About the Role:
You will work on a broad range of cutting-edge data science and machine learning problems across a variety of industries. You will be engaging with clients to understand their business context. If you are passionate to work on complex unstructured business problems that can be solved using data science and machine learning, we would like to talk to you.
Role: ALDS
Mandate Skills & Competencies:
- Work on the end-to-end design and deployment of scalable AI and machine learning solutions in production environments.
- Develop and optimize large language model (LLM) applications using frameworks such as LangChain, LlamaIndex, and Haystack.
- Drive Retrieval-Augmented Generation (RAG) pipelines with vector databases like Pinecone, FAISS, Weaviate, and Milvus.
- Collaborate closely with other data scientists to transition models smoothly from research to production.
- Build and manage comprehensive MLOps pipelines encompassing training, testing, deployment, monitoring, and retraining.
- Architect AI solutions integrated into enterprise applications via APIs and microservices.
- Stay updated on AI and Generative AI research, continually assessing emerging frameworks for adoption.
- Mentor junior AI engineers and promote a culture of best practices in AI engineering.
- Work with business stakeholders to translate requirements into AI-driven outcomes.
- Ensure adherence to responsible AI principles, including bias mitigation, fairness, and explainability.
Must-Have:
- 5–8 years of experience in AI/ML engineering, with at least 2 years in leading AI initiatives.
- Strong expertise in Python, TensorFlow, PyTorch, Hugging Face Transformers.
- Hands-on experience with LangChain or similar LLM application frameworks.
- Solid understanding of vector databases, RAG architectures, and prompt engineering.
- Proficiency in MLOps tools (MLflow, Kubeflow, Airflow, Docker, Kubernetes).
- Familiarity with cloud AI platforms (AWS SageMaker, GCP Vertex AI, Azure ML).
- Strong background in data pipelines, APIs, and scalable system design.
Nice-to-Have:
- Experience fine-tuning LLMs (LoRA, PEFT, parameter-efficient training).
- Knowledge of computer vision or multimodal AI.
- Familiarity with responsible AI frameworks and explainability tools (SHAP, LIME, Captum).
- Contributions to open-source AI projects.
Desired Experience & Education:
- 4- 8 years of relevant Machine Learning experience.
- Minimum Master’s Degree in Engineering, Computer Science, Mathematics, Computational Statistics, Operations Research, Machine Learning or related technical fields.
Note:
By submitting your application, you consent to being contacted by our Talent Acquisition team via phone call, email, SMS, WhatsApp, or other communication channels regarding your application and relevant career opportunities.Skills Required
- 5-8 years of experience in AI/ML engineering, with at least 2 years in leading AI initiatives
- Strong expertise in Python
- Strong expertise in TensorFlow
- Strong expertise in PyTorch
- Strong expertise in Hugging Face Transformers
- Hands-on experience with LangChain or similar LLM application frameworks
- Solid understanding of vector databases (Pinecone, FAISS, Weaviate, Milvus), RAG architectures, and prompt engineering
- Proficiency in MLOps tools (MLflow, Kubeflow, Airflow, Docker, Kubernetes)
- Familiarity with cloud AI platforms (AWS SageMaker, GCP Vertex AI, Azure ML)
- Strong background in data pipelines, APIs, and scalable system design
- Minimum Master's Degree in Engineering, Computer Science, Mathematics, Computational Statistics, Operations Research, Machine Learning, or related technical field
- Experience fine-tuning LLMs (LoRA, PEFT, parameter-efficient training)
- Knowledge of computer vision or multimodal AI
- Familiarity with responsible AI frameworks and explainability tools (SHAP, LIME, Captum)
- Contributions to open-source AI projects
What We Do
Sigmoid is a leading data engineering and AI solutions company that helps enterprises gain a competitive advantage with effective data-driven decision-making. Our team is strongly driven by the passion to unravel data complexities. We generate actionable insights and translate them into successful business strategies. We leverage our expertise in open-source and cloud technologies to develop innovative frameworks catering to specific customer needs. Our unique approach has positively influenced the business performance of our Fortune 500 clients across CPG, retail, banking, financial services, manufacturing, and other verticals. Backed by Sequoia Capital, Sigmoid has offices in New York, San Francisco, Dallas, Lima, Amsterdam, and Bengaluru. We are recognized among the world's fastest growing and innovative tech companies, winning several awards and recognition like the Deloitte Technology Fast 500, Financial Times- The Americas’ Fastest Growing Companies, Inc. 5000, Great Place To Work- India’s Best Leaders in Times of Crisis, Data Breakthrough, Aegis Graham Bell, TiE50, NASSCOM Emerge 50, and others. Learn more: https://www.sigmoid.com/ or https://sigmoid.com/careers/ for careers.

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