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Tiger Analytics

Gen AI Engineer

УдалённоCanada, United States только
Опубликовано
Роль
AI / ML
Опыт
Синьор
Занятость
Полная занятость
Размер компании
Крупная
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Коротко по делу

AI Engineer with 7+ years in software engineering and AI engineering. Must be strong in Python, AWS, Generative AI/LLM APIs, RAG, Agentic AI, API services, CI/CD and ML pipelines.

Ключевые навыки

PythonGenerative AIRAG

Обязательные навыки

AWSLLM APIsAWS BedrockDevOpsCI/CDML pipelinesOpenAI APIJSONRESTLLM orchestrationVector storesPinecone/Weaviate/pgvectorLangChain/CrewAI/Semantic KernelRAGAS/TruLens

Желательные навыки

Bedrock AgentBedrock Core

Чем предстоит заниматься

  • Building high-performance API services
  • Implementing complex RAG and Agentic AI architectures
  • Design and implement end-to-end RAG pipelines, including retrievers, vector stores, and generators
  • Optimize latency and tune relevance to ensure production-grade performance
  • Apply a strategic approach to document chunking and embedding, balancing granularity with semantic coherence
  • Develop autonomous or semi-autonomous agents using frameworks such as LangChain, CrewAI, or Semantic Kernel
  • Manage orchestration, tool integration, and robust error handling for non-deterministic AI outputs
  • Manage memory and context in multi-turn interactions and external API interfacing
  • Assess performance, grounding accuracy, and hallucination detection using evaluation frameworks
  • Iterate systems based on performance metrics and continuous improvement practices

Что требуется

  • Minimum of 7+ years of professional experience in software development and AI engineering
  • Heavy focus on Python, AWS infrastructure, and Generative AI
  • Hands-on experience integrating Generative AI/LLM APIs, AWS Bedrock, and other model providers
  • Experience with DevOps, CI/CD pipelines, and ML pipelines within the AWS ecosystem
  • Exposure to building Gen AI/Agentic AI applications, managing efficiency, latency, and backend infrastructure
  • Strong Python programming skills with a deep understanding of OpenAI API standards, JSON RESTful design, and LLM orchestration
  • Candidates will be expected to demonstrate deep technical proficiency in Retrieval-Augmented Generation (RAG)
  • Ability to design and implement end-to-end RAG pipelines, including retrievers, vector stores, and generators
  • Expertise in latency optimization and relevance tuning to ensure production-grade performance
  • Strategic approach to document chunking and embedding, balancing granularity with semantic coherence
  • Practical experience developing autonomous or semi-autonomous agents using frameworks such as LangChain, CrewAI, or Semantic Kernel
  • Ability to manage orchestration, tool integration, and robust error handling for non-deterministic AI outputs
  • Proficiency in managing memory and context (episodic vs. long-term) in multi-turn interactions and external API interfacing
  • Familiarity with evaluation frameworks to assess performance, grounding accuracy, and hallucination detection
  • Ability to iterate systems based on performance metrics and continuous improvement practices

Преимущества

  • Significant career development opportunities exist as the company grows
  • The position offers a unique opportunity to be part of a small, fast-growing, challenging and entrepreneurial environment, with a high degree of individual responsibility

Tiger Analytics is a leading advanced analytics consulting firm specializing in AI and machine learning. It is a trusted analytics partner for several Fortune 100 companies, helping them generate business value from their data.

AnalyticsКрупная

Что говорят о компании

3.8/ 5

  • Employees appreciate the supportive work culture.
  • There are good opportunities for professional development.
  • Some employees mention a lack of work-life balance.
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