Senior Software Engineer - Platform

Cognite - AI for Industry

Bengaluru

On-site

INR 4,000,000 - 7,000,000

Full time

14 days+
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Job summary

Cognite is seeking a Software Engineer who builds high-performance distributed systems for industrial data infrastructure. The role focuses on ownership of core platform components, reliability, and scalable architectures across multi-tenant environments.

You’ll work with Kotlin/Java, Python (FastAPI), and cloud-native stacks (Kubernetes, Azure, AWS, GCP). Experience with workflow engines and observability tooling is essential.

Qualifications

  • 6–8 years of engineering experience in backend services.
  • Proven track record operating production systems at scale.
  • Strong expertise in JVM languages and Python (FastAPI).
  • Experience with cloud-native service design and multi-cloud deployments.

Responsibilities

  • Design, build, and operate a serverless execution engine and workflow orchestration layer.
  • Own uptime, latency SLOs, and incident response for platform services.
  • Architect for multi-tenant, multi-cloud, high-throughput workloads.
  • Define and evolve REST and event-driven APIs for internal/external use.
  • Instrument services with OpenTelemetry, Prometheus, Grafana for observability.
  • Champion CI/CD with automated tests and reliable deployment pipelines.

Skills

Kotlin
Java
Python
Distributed systems
Cloud-native design
Kubernetes
Azure
GCP
AWS
OpenTelemetry

Tools

Conductor
Apache Airflow
Kafka
Pub/Sub

Job description

What Cognite is: Relentless to achieve

Cognite operates at the forefront of industrial digitalization, building AI , and data solutions that solve the world’s hardest, highest-impact problems. With unmatched industrial heritage and a comprehensive suite of AI capabilities, including low-code AI agents, Cognite accelerates the digital transformation to drive operational improvements.

We thrive in challenges. We challenge assumptions. We execute with speed and ownership. If you view obstacles as signals to step forward - not backwards - you’ll feel right at home here.

Our Moonshot is bold: Unlock $100B in customer value by 2035, and redefine how global industry works. Join us in this venture where AI and data meet ingenuity, and together, we will forge the path to a smarter, more connected industrial future.

About The Role

We’re seeking a Software Engineer who excels at building high-performance distributed systems and thrives in a fast-paced startup environment. You’ll be working on cutting-edge data infrastructure challenges that directly impact how Fortune 500 industrial companies manage their most critical operational data.

How you’ll demonstrate Ownership
  • Platform Ownership: Design, build, and operate the core serverless execution engine and Workflows orchestration layer that serve as foundational primitives for CDF’s AI and automation capabilities.
  • Reliability Engineering: Own uptime, latency SLOs, and incident response for platform services ensuring Functions execute deterministically and Workflows progress without data loss or silent failures.
  • Scalability: Architect for multi-tenant & multi-cloud, high-throughput workloads. Design scheduling, queueing, and retry mechanisms that degrade gracefully under pressure.
  • API Design: Define and evolve clean API-first architecture, versioned REST and event-driven APIs that downstream engineering teams and external customers depend on.
  • Observability: Instrument services with distributed tracing, structured logging, and alerting (Open-telemetry / Prometheus / Grafana / Honeycomb stack) so failures surface before customers notice.
  • CI/CD & Testing: Champion test automation - unit, integration, and smoke tests and maintain deployment pipelines that ship to production with confidence.
  • Performance: Profile and resolve bottlenecks in execution throughput, cold-start latencies, and cross-service call chains driving a “snappy” platform experience for industrial workloads.
  • Cost Efficiency (Bonus): Model compute and storage costs for functions execution; identify and implement optimizations that reduce cloud spend without sacrificing reliability.
The Impact you bring to Cognite
  • 6–8 Years of Engineering: Proven track record building and operating production backend services at scale.
  • Expertise: Deep mastery of JVM languages (Kotlin preferred, Java acceptable), Python(FastAPI), distributed systems patterns, and cloud-native service design (Kubernetes, Azure, GCP, AWS, Private cloud).
  • Workflow & Orchestration: Hands-on experience with workflow engines (Conductor, Apache Airflow, or equivalent) and event-driven architectures (Kafka, Pub/Sub).
  • Data & Storage: Comfortable working with relational databases (PostgreSQL) & non-relational databases, object storage(Data-lakes), and caching layers (Redis) in multi-tenant environments.
  • Observability Stack: Practical experience with Open-telemetry, Prometheus, and Grafana for instrumentation and operational insight.
  • ML Platform Exposure: experience supporting ML workloads & notebooks in production, whether through job scheduling, resource management, experiment tracking integration, or model serving infrastructure.
  • Contextualisation Domain (Bonus): Familiarity with industrial knowledge graph construction, entity resolution, or NLP/CV pipelines as they relate to industrial asset data is a strong differentiator.
  • Full-Stack Awareness (Bonus): Familiarity with React or TypeScript is a plus for consuming and dogfooding your own platform’s developer tooling.
  • The Platform Thinking Spirit: A passion for building composable, well-documented, and automated platform systems that empower other engineers including ML engineers to build faster.

Good to have

ML Platform & Contextualisation:

  • ML Workload Support: Build and extend platform primitives compute scheduling, environment management, and secrets handling, that enable ML engineers to run model training, fine-tuning, and batch inference jobs reliably.
  • Contextualisation Pipelines: Support the engineering infrastructure behind Cognite’s Contextualisation capabilities (entity matching, asset hierarchy inference, P&ID parsing) by ensuring the platform can orchestrate long-running, GPU-aware, and data-intensive ML workflows without manual intervention.
  • Vector & Embedding Infrastructure (Bonus): Familiarity with serving or storing vector embeddings to support semantic search and RAG-based contextualisation use cases.
  • Model Lifecycle Awareness: Understand model versioning, A/B experiment tracking, and the boundary between platform concerns and ML framework concerns, so the platform stays lean while ML teams stay unblocked.

Learn more about us

  • Impact 2025
  • Cognite’s Industrial AI: Moonshot
  • We’re globally recognized domain experts with an international presence that spans Phoenix, Houston, Oslo Tokyo, Bengaluru, and Abu Dhabi.

_ Equal Opportunity _

Cognite is committed to creating a diverse and inclusive environment at work and is proud to be an equal opportunity employer. All qualified applicants will receive the same level of consideration for employment.

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