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Crypto Mize
Experience / Eligibility
CS / IT / Engineering Graduate
Salary
Not Disclosed / As per Industry Standards
Location
Mumbai, Maharashtra, India
Artificial Intelligence Developer jobs in Delhi at CryptoMize are open on a rolling, always-hiring basis. This is a full-time, permanent engineering position with immediate joining at our New Delhi HQ, building the machine-learning systems the practice’s platforms run on. Analysts here model; researchers here explore; developers here make it real — services, pipelines and inference infrastructure that survive production traffic across the nine-platform stack. You will build high-performance ML applications and the data infrastructure beneath them, from feature stores to serving layers, with the uptime that client engagements demand. The complete job description — responsibilities, requirements, seniority path and selection process — follows.
LOCATION New Delhi (HQ)
EMPLOYMENT Full-time · Permanent
AVAILABILITY Immediate · Rolling intake
COMPENSATION Discussed at screening
TRACKS ON THIS DESK26
CRAFT SKILLS NAMED11
TOOLS & SYSTEMS5
PATH STAGES4
01
01The actual work
What will you actually do as a Artificial Intelligence Developer at CryptoMize?
01
Build and operate production ML services — training pipelines, inference APIs and monitoring — on the practice’s platform stack
02
Engineer the data infrastructure: ingestion from platform corpora, feature stores, versioned training sets
03
Take validated models from notebook to service: containerized, tested, observable, and honest about drift
04
Optimize for the real constraints — latency, GPU cost, throughput on streaming media and sentiment workloads
05
Build simulation and what-if tooling that lets strategists interrogate model behavior before it ships
06
Keep the ML platform operable: reproducible environments, model registries, rollback paths
07
Collaborate with analysts on model handoff and with platform teams on integration contracts
ROLE RESPONSIBILITIES
As an Artificial Intelligence Developer you will build high-performance machine-learning applications and the supporting infrastructure — platforms, pipelines and simulation solutions — that the practice’s intelligence products run on. The measure is production: services that survive traffic, models that ship, and systems colleagues can operate without paging you.
You will develop across Linux and cloud environments, work with GPU-class hardware where the workloads demand it, and apply distributed-computing tools as datasets outgrow single machines. Data management is part of the craft: mining and analysis methods, model building, algorithms and simulations maintained as living, versioned assets.
Collaboration runs both ways — receiving validated models from analysts with clean handoff contracts, and integrating with platform teams on interfaces that hold. Client data flowing through your systems is confidential without exception.
02
02Capability profile
What skills and tools does a Artificial Intelligence Developer need?
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Craft skills11 Tools & systems5 Offer standards4
Production Python — typed, tested, reviewable servicesML engineering: training pipelines, batch and streaming inference, model versioning Py Torch/Tensor Flow serving — optimization and quantization for real constraintsData engineering — ingestion, feature stores, dataset versioning Containerization and orchestration (Docker, Kubernetes basics)Linux development discipline and cloud environments (AWS-class)GPU hardware literacy — profiling and cost-aware workload placementAPI design (REST) and NoSQL/RDBMS schema judgmentObservability — logging, metrics and drift monitoring for live modelsCode review and Git-based team workflowDiscretion with client data flowing through systems you build (NDA-grade)
Python 3.11 (PyTorch, FastAPI)Docker + KubernetesPostgreSQL and Redis-class storesAWS or equivalent cloud (EC2/Sage Maker-class)M Lflow-class registry and tracking
Depth of demonstrated skill in the specific role disciplineClassification and scope of the client engagement the role supportsUrgency and time-sensitivity of active project requirementsTrack record built across CryptoMize engagements
Also known as: ai developer jobs · machine learning engineer · artificial intelligence engineer · ml developer
03
03Seniority ladder
Artificial Intelligence Developer — seniority path at CryptoMize
Engineering careers advance on what stays up: systems that survive production, models that ship, and infrastructure colleagues trust.
Artificial Intelligence Developer
Owns services and pipelines for one to two platform workstreams with senior review.
1/4
Senior Artificial Intelligence Developer
Designs ML system architecture, leads production standards, and mentors junior engineers.
2/4
AI Engineering Lead
Runs the engineering side of the platform — architecture, reliability and the developer bench.
3/4
AI Practice Principal
The apex: owns the practice’s AI capability end-to-end — research direction, production systems and delivery.
4/4
04
04The engagement surface
CryptoMize work a Artificial Intelligence Developer touches
Every role plugs into live engagements across the five Penta-P domains — these are the services your work feeds.
Artificial Intelligence Developer · Job Opening
This seat plugs into 7 live CryptoMize services across the five Penta-P domains — the work below is where yours lands.
7 SERVICESPENTA-P
AI Governance
Predictive Intelligence
Big Data Mining
Data Security
Cybersecurity
IT Consultancy
Intelligence
WHAT DOES ARTIFICIAL INTELLIGENCE DEVELOPER COMPENSATION DEPEND ON?
Compensation is discussed during screening — never a fixed public figure, because it varies per person and per engagement. It depends on:
OFFER CONSTRUCTION FACTOR
01 Depth of demonstrated skill in the specific role discipline
02 Classification and scope of the client engagement the role supports
03 Urgency and time-sensitivity of active project requirements
04 Track record built across CryptoMize engagements