
501 - 1000 employees
🏥 Healthcare
🏨 Hospitality
✈️ Travel
💰 $100M Private Equity Round on 2022-08
Healthcare • Hospitality • Travel
Blend360 is a professional services company specializing in AI, data analytics, and data-driven solutions. They work with Fortune 1000 and large enterprise brands to tackle significant challenges by integrating people and artificial intelligence. Blend360 focuses on several domains including business intelligence, data engineering, data science, MLOps, and data governance. Their industries of expertise encompass financial services, energy, healthcare and life sciences, retail, technology, media & telecom, and travel & hospitality. Blend360 is recognized for their AI and data solutions, having earned accolades such as "AI-Enabling Solution of the Year" and being listed among the "Top Generative AI Service Providers 2024.
🕒 August 7
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501 - 1000 employees
🏥 Healthcare
🏨 Hospitality
✈️ Travel
💰 $100M Private Equity Round on 2022-08
Healthcare • Hospitality • Travel
Blend360 is a professional services company specializing in AI, data analytics, and data-driven solutions. They work with Fortune 1000 and large enterprise brands to tackle significant challenges by integrating people and artificial intelligence. Blend360 focuses on several domains including business intelligence, data engineering, data science, MLOps, and data governance. Their industries of expertise encompass financial services, energy, healthcare and life sciences, retail, technology, media & telecom, and travel & hospitality. Blend360 is recognized for their AI and data solutions, having earned accolades such as "AI-Enabling Solution of the Year" and being listed among the "Top Generative AI Service Providers 2024.
• Lead AI project delivery end to end, ensuring governance, stakeholder communication, and reliable execution • Design and build production-ready RAG systems, agentic frameworks, and LLM-powered solutions • Apply prompt engineering techniques including instruction design, few-shot prompting, structured outputs, and tool/agent prompts • Lead feasibility assessments across prompting, RAG, fine-tuning, classical ML, and hybrid solutions • Design AI evaluation frameworks using LLM-as-a-judge, custom metrics, recall@k, precision@k, and go/no-go gates • Run experiments across prompts, retrievers, chunking strategies, embeddings, reranking approaches, and models • Identify and categorize model failures, hallucinations, retrieval misses, instruction-following errors, and quality regressions • Build scalable inference infrastructure and CI/CD pipelines for AI and ML models • Automate the MLOps/LLMOps lifecycle, including tracking, versioning, deployment, monitoring, retraining, and continuous improvement • Design APIs, microservices, and orchestration layers optimized for latency, cost, reliability, and scalability • Mentor junior engineers • Contribute to proposals, solution design, and new business initiatives • Communicate with engineering teams, senior stakeholders, and clients and advise on pragmatic AI decisions
• 6+ years of professional experience building and deploying AI, ML, data-driven, or software solutions in production environments • Strong expertise in Python • Solid Git practices • Hands-on experience with LLM-powered solutions, RAG systems, and modern GenAI development patterns • Practical experience with chunking, embeddings, retrieval, reranking, and evaluation • Strong understanding of prompt engineering, structured outputs, few-shot prompting, instruction design, and tool/agent prompts • Experience designing AI evaluation strategies, metrics, dataset curation, structured experimentation, and quality gates • Experience with MLOps/LLMOps tools such as MLflow, Weights & Biases, or similar • Solid experience with AWS, Azure, or GCP; Azure preferred • Experience with containerization, orchestration, scalable inference, APIs, and microservices • Understanding of event-driven architectures and production-grade engineering practices • Clear communication with engineering teams, senior stakeholders, and clients • Pragmatic approach balancing innovation, reliability, cost, latency, and business value • Advanced English required for written and verbal communication • Nice to have: Databricks MLOps platform experience • Nice to have: LLM fine-tuning experience • Nice to have: Agentic GenAI systems experience • Nice to have: Infrastructure as Code experience • Nice to have: Security and observability practices for AI services • Nice to have: Classical machine learning background • Nice to have: Open-source contributions or public technical work
• Every day lunches at headquarters, with vegetarian, vegan, gluten and sugar free options • Gourmet meals every Friday with an on-site chef at headquarters • Flexible working options • Macbook and accessories • Snacks and beverages available every day at headquarters • After office events, football, tennis and game nights at headquarters • Football league every Wednesday and Friday • Tennis courts • Chess championships, game and music nights • AWS certifications • Study plans, courses and other certifications • English lessons • Tech Tuesdays learning opportunities • Mentoring and development opportunities • Anniversary and birthday gifts
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