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Coditas
Posted 2mo ago

Gen AI Engineer Python

Coditas
Pune, Maharashtra, India
OnsiteFull Time
Responsibilities
  • developing models
  • building backend
  • implementing RAG
Requirements
  • 3+ years experience building generative AI solutions with Python
  • Backend frameworks (FastAPI/Django/Flask)
  • Vector DBs (Pinecone/Weaviate/PGVector/Supabase)
  • Relational DBs
  • Docker
  • Async patterns
  • Celery/cron, and testing (Pytest)
Technical tools mentioned
PythonLangChainLang chainLlama-IndexLLMSPineconeWeaviateSupabasePGVectorPostgreSQLMySQLFastAPIDjangoFlaskCelerycron jobsDockerPytestMicrosoft Excel

Job description


We are looking for a skilled Generative AI Engineer with a strong background in Python to join our dynamic team. In this role, you will integrate backend development expertise with the latest advancements in AI to create impactful solutions. If you excel in a fast-paced environment and enjoy tackling complex challenges, we encourage you to apply.

Roles and Responsibilities

Generative AI Development:

  • Apply prompt engineering techniques to design effective queries and ensure optimal responses from language models.

  • Develop and implement generative AI models using frameworks like LangChain or Llama-Index.

  • Apply prompt engineering techniques to design effective queries and ensure optimal LLM responses for diverse use cases.

  • Master advanced LLM functionalities, including prompt optimization, hyperparameter tuning, and response caching.

  • Implement Retrieval-Augmented Generation (RAG) workflows by integrating vector databases like Pinecone, Weaviate, Supabase, or PGVector for efficient similarity searches.

  • Work with embeddings and build solutions that leverage similarity search for personalized query resolution.

  • Explore and process multimodal data, including image and video understanding and generation.

  • Integrate observability tools for monitoring and evaluating LLM performance to ensure system reliability.

  • Develop and implement generative AI models using frameworks and tools relevant to Node.js environments.

  • Master advanced functionalities of large language models (LLMs), including prompt optimization, hyperparameter tuning, and response caching.

  • Implement Retrieval-Augmented Generation (RAG) workflows by integrating vector databases for efficient similarity searches.

  • Work with embeddings and build solutions that leverage similarity search for personalized query resolution.

  • Explore and process multimodal data, including image and video understanding and generation.

  • Integrate observability tools for monitoring and evaluating LLM performance to ensure system reliability

 Pre-Event Preparation

  • Build and maintain scalable backend systems using Python frameworks such as FastAPI, Django, or Flask.

  • Design and implement RESTful APIs for seamless communication between systems and services.

  • Optimize database performance with relational databases (PostgreSQL, MySQL) and integrate vector databases (Pinecone, PGVector, Weaviate, Supabase) for advanced AI workflows.

  • Implement asynchronous programming and adhere to clean code principles for maintainable, high-quality code.

  • Seamlessly integrate third-party SDKs and APIs, ensuring robust interoperability with external systems.

  • Develop backend pipelines for handling multimodal data processing, and supporting text, image, and video workflows.

  • Manage and schedule background tasks with tools like Celery, cron jobs, or equivalent job queuing systems.

  • Leverage containerization tools such as Docker for efficient and reproducible deployments.

  • Design and implement RESTful APIs for seamless communication between systems and services.

  • Optimize database performance with relational databases (e.g., PostgreSQL, MySQL) and integrate vector databases (e.g., Pinecone, Weaviate, Supabase, PGVector) for advanced AI workflows.

  • Implement asynchronous programming and adhere to clean code principles for maintainable, high-quality code.

  • Seamlessly integrate third-party SDKs and APIs, ensuring robust interoperability with external systems.

  • Develop backend pipelines for handling multimodal data processing, supporting text, image, and video workflows.

  • Manage and schedule background tasks with tools like Celery, cron jobs, or equivalent job queuing systems.

  • Leverage containerization tools such as Docker for efficient and reproducible deployments.

  • Ensure security and scalability of backend systems with adherence to industry best practices.



You Should Have

  • Proficiency in Python and experience with backend frameworks like FastAPI, Django, or Flask.

  • Knowledge of frameworks like LangChain, Llama-Index, or similar tools, with experience in prompt engineering and Retrieval-Augmented Generation (RAG).

  • Hands-on experience with relational databases (PostgreSQL, MySQL) and vector databases (Pinecone, Weaviate, Supabase, PGVector) for embeddings and similarity search.

  • Familiarity with LLMs, embeddings, and multimodal AI applications involving text, images, or video.

  • Proficiency in deploying AI models in production environments using Docker and managing pipelines for scalability and reliability.

  • Strong skills in writing and managing unit and integration tests (e.g., Pytest), along with application debugging and performance optimization.

  • Understanding of asynchronous programming concepts for handling concurrent tasks efficiently.

  • Experience with prompt engineering and Retrieval-Augmented Generation (RAG) workflows.




About Coditas

Provides digital engineering and software development services to businesses.

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