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WD

Engineering Lead (AI & Automation Products)

wd3:dentsuaegis:dan_global
๐Ÿ‡ฎ๐Ÿ‡ณ India
On-site
Staff / Principal
1 month ago
  • Python
  • FastAPI
  • Flask
  • React.js
  • PostgreSQL
  • Claude Code
  • AI
  • LLM APIs
  • Claude
  • OpenAI
  • OAuth
  • Secrets Management
  • Azure
  • Key Vault
  • Integration Testing
  • CI/CD
  • LangChain
  • LangGraph
  • CrewAI
  • Temporal
  • Celery
  • Unity Catalog
  • MCP
  • DV360
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Job Description:

Location:Location: DGS โ€“ India (overlap hours with US Eastern Time required)

Required Qualifications

  • 12โ€“16 years of professional software engineering experience with deep Python expertise
  • Demonstrated experience leading or managing a team of engineers โ€” code review, mentoring, growth planning โ€” not just individual contribution
  • Strong experience designing and building production APIs in Python (FastAPI, Flask, or similar) and full-stack applications including React + Tailwind CSS front ends
  • Strong relational database experience โ€” schema design, normalization, query performance โ€” Postgres preferred
  • Strong practical proficiency with Claude Code or similar AI-assisted development tools, including agentic coding patterns and context management โ€” and the ability to establish team standards for effective use
  • Experience integrating LLM APIs (Claude, OpenAI, or equivalent) into production systems โ€” system prompt design, structured output parsing, multimodal input handling
  • Practical experience with tool-use/function-calling patterns โ€” defining tool schemas, validating arguments, handling tool results, chaining tool calls, and managing basic failure/retry behavior
  • Strong context engineering fundamentals โ€” context window management, token budgeting, long-document handling strategies, and retrieval/context-selection patterns
  • Awareness of prompt injection, adversarial inputs, and untrusted-document risks in AI systems; ability to design guardrails for external briefs, trafficking sheets, platform exports, and other model-readable inputs
  • Experience integrating third-party platform APIs with OAuth (any domain) โ€” general competency, not platform-specific
  • Working knowledge of secrets management and credential security practices in production systems, ideally including Azure Key Vault or equivalent managed secrets tooling
  • Solid grasp of QA practices, data quality engineering, and AI evaluation: unit and integration testing, data validation, golden datasets, regression evals, structured-output checks, and observability
  • Practical understanding of human-in-the-loop AI systems โ€” adjudication workflows, labeled examples, accuracy measurement by parameter/category, feedback loops, and quality gates
  • Experience with cloud infrastructure (Azure preferred) and modern deployment patterns: containers, CI/CD, managed identities, object storage, and background job/workflow execution
  • Experience implementing background-processing or workflow patterns โ€” queues, scheduled jobs, retries, idempotency, status tracking, and operational monitoring
  • Strong written and verbal communication for collaboration across distributed onshore (US) and offshore (India) teams

Preferred Qualifications

  • Exposure to LLM application and workflow frameworks beyond raw API calls: LangChain, LangGraph, CrewAI, Temporal, Azure Durable Functions, Celery/RQ, or equivalent agent/workflow tooling โ€” useful as the portfolio expands into durable, multi-step automation in later phases
  • Exposure to model selection and cost optimization strategies โ€” prompt caching, batching, tiered model selection by task complexity, latency/cost tradeoff analysis, and usage forecasting
  • Background in media, advertising, or marketing technology data environments
  • Exposure to data governance tooling such as Unity Catalog, attribute-based access control, or tag-driven policies
  • Exposure to MCP servers or MCP-based developer workflows, with interest in when MCP is preferable to direct APIs for reusable tools, resources, prompts, and agent context
  • Exposure to data flywheel concepts โ€” labeled corpora, adjudication data models, feedback capture, quality dashboards, and mechanisms that improve future AI behavior and inform phase-gate decisions
  • Exposure to DV360 SDF (Structured Data Files), TTD API, or comparable adtech platform data formats/APIs
  • Open-source contributions or public projects demonstrating full-stack or AI engineering work

Location:

DGS India - Bengaluru - Manyata N1 Block

Brand:

Merkle

Time Type:

Full time

Contract Type:

Permanent

Engineering Lead (AI & Automation Products) ยท wd3:dentsuaegis:dan_global

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