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NewRocket

Forward Deployed AI Engineer/Anthropic – Data Intelligence

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Коротко по делу

Seeking a hands-on, client-facing Forward Deployed AI Engineer with a solid foundation in Data Intelligence to design, build, test, and deploy enterprise AI solutions grounded in high-quality, governed enterprise data.

Ключевые навыки

ClaudeAnthropic APIAI technologies/LLMs/RAG/vector search

Обязательные навыки

PythonSQLREST APIJSONOAuthGitAWSAzureGCPdata technologies/vector databases/search platforms/cloud platformsdata technologies/relational databases/document repositories/data warehouses

Желательные навыки

Claude CodeAnthropic ConsoleLangChainLangGraphLlamaIndexSemantic KernelPineconeWeaviate

Чем предстоит заниматься

  • Partner directly with client business, data, technology, security, and ServiceNow stakeholders to identify high-value AI and Data Intelligence use cases.
  • Translate client requirements into practical technical designs, prototypes, production implementations, and iterative delivery plans.
  • Build AI-enabled applications and workflows that use trusted enterprise data to support knowledge discovery, employee assistance, service operations, customer service, document intelligence, decision support, and workflow automation.
  • Develop reusable Data Intelligence components, accelerators, integration patterns, and implementation playbooks.
  • Support the full solution lifecycle from discovery and data assessment through implementation, testing, production rollout, monitoring, and continuous improvement.
  • Design and implement pipelines to ingest, transform, enrich, index, and retrieve structured and unstructured enterprise data.
  • Connect AI solutions to approved enterprise data sources including ServiceNow, knowledge bases, document repositories, collaboration platforms, databases, data warehouses, data lakes, and third-party SaaS systems.
  • Support data profiling, data-quality assessment, schema mapping, metadata enrichment, classification, normalization, deduplication, and data lineage activities.
  • Work with client data owners and governance teams to define data access, retention, privacy, security, and usage controls.
  • Build data integration workflows using APIs, SQL, ETL/ELT tools, event-driven patterns, middleware, and custom services.
  • Design, build, and optimize RAG solutions using Claude and other approved LLM technologies.
  • Implement document-processing and knowledge-ingestion workflows including parsing, chunking, metadata enrichment, embeddings, indexing, vector storage, hybrid retrieval, reranking, and source attribution.
  • Develop semantic-search and enterprise knowledge experiences.
  • Configure and evaluate vector databases, search platforms, relational databases, and enterprise knowledge repositories.
  • Build access-aware retrieval patterns that respect source-system permissions.
  • Improve answer quality and reliability through retrieval tuning, context management, source citation, grounding, relevance scoring, fallback behavior, and user feedback loops.
  • Define and execute RAG or retrieval evaluation measuring retrieval quality, context relevance, groundedness, completeness, accuracy, latency, cost, and user experience.
  • Build and deploy LLM-powered applications using Claude, the Anthropic API, and other approved model providers.
  • Develop prompt and context-engineering approaches that use clear instructions, structured inputs, examples, retrieval context, output schemas, and guardrails.
  • Implement structured outputs, tool use/function calling, API integrations, workflow orchestration, and error handling.
  • Build agentic AI workflows that reason over approved data, access authorized tools, execute bounded tasks, and route exceptions to human reviewers.
  • Define agent instructions, context strategies, tool permissions, validation logic, escalation paths, and human-in-the-loop controls.
  • Support secure Model Context Protocol (MCP) or comparable patterns for connecting AI applications to enterprise systems.
  • Evaluate AI and agentic workflow behavior for task completion, consistency, safety, accuracy, groundedness, latency, cost, and reliability.
  • Integrate AI and Data Intelligence capabilities with ServiceNow workflows, data, knowledge, APIs, and user experiences.
  • Collaborate with ServiceNow architects and developers to ensure solutions follow platform leading practices and security requirements.
  • Help clients embed AI insights into existing workflows.
  • Develop test plans, test cases, evaluation datasets, and quality assurance processes for AI and data-intensive solutions.
  • Measure and improve solution performance across data quality, retrieval quality, model output, latency, reliability, and cost.
  • Implement logging, tracing, monitoring, and feedback mechanisms across pipelines, retrieval, and model calls.
  • Investigate production issues and implement durable improvements.
  • Support release management practices including version control for code, prompts, configs, and evaluation assets.
  • Contribute to LLMOps and DataOps practices.
  • Apply responsible-AI, security, privacy, and governance throughout the lifecycle.
  • Implement safeguards for sensitive data, leakage, unauthorized access, prompt injection, unsafe tool use, etc.
  • Support controls such as access-aware retrieval, data masking, encryption, output validation, attribution, and audit logging.
  • Work with client security, governance, legal, compliance and risk teams to align with policies.
  • Document technical designs, data flows, security controls, and operational procedures.
  • Collaborate closely with AI Architects, engineers, developers, and client teams.
  • Participate in discovery workshops, architecture sessions, sprint planning, demos, code reviews, and retrospectives.
  • Support client-facing technical research, proofs of concept, demos, and planning.
  • Contribute reusable code, patterns, and playbooks.
  • Stay current on Anthropic and Claude capabilities, AI trends, data platforms, RAG frameworks, search, and ServiceNow AI.
  • Identify opportunities to improve NewRocket's AI delivery methodology.

Что требуется

  • 3+ years of relevant experience in software engineering, AI engineering, data engineering, analytics engineering, cloud engineering, systems integration, or related technical role.
  • Hands-on experience building applications, data pipelines, integrations, APIs, automations, or cloud services.
  • Strong proficiency in Python; experience with JavaScript/TypeScript, Java, SQL, or similar.
  • Experience with structured and unstructured data, including relational databases, document repositories, APIs, and cloud storage.
  • Experience with SQL, data transformation, data modeling, ETL/ELT, data ingestion, or data-integration concepts.
  • Exposure to generative AI, LLMs, RAG, embeddings, vector search, semantic search, prompt engineering, AI agents, or LLM APIs.
  • Experience building or supporting API-driven integrations using REST APIs, JSON, OAuth, service accounts, and authentication/authorization patterns.
  • Familiarity with cloud platforms such as AWS, Azure, or GCP.
  • Understanding of software-development best practices: Git, code review, testing, debugging, documentation, and agile delivery.
  • Strong problem-solving skills and ability to work through ambiguity.
  • Strong written and verbal communication skills.
  • Ability and willingness to work directly with clients in a consulting and professional-services environment.

Преимущества

  • Commitment to a diverse and inclusive workplace
  • Equal opportunity employer
  • Employment regardless of sex, race, creed, color, gender, religion, marital status, domestic partner status, age, national origin, physical or mental disability, medical condition, sexual orientation, pregnancy, citizenship, military or veteran status

NewRocket brings 20 years of advising and supporting clients in designing, implementing, and managing AI-enabled digital workflows to improve employee and customer experiences. An Elite ServiceNow Partner and Anthropic Partner, the Company has completed over 3,000 projects across nine industry specializations.

ConsultingСредняя

Что говорят о компании

3.0/ 5

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