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Sram Design Jobs in California (NOW HIRING)

Circuit Design Engineer

Santa Clara, CA ยท On-site

$150 - $200/hr

In this role, you will be working with a team of circuit designers to design advanced custom digital megacells (SRAM memories, on-chip sensors, ML accelerators data path) used in a high performance ...

New

SRAM, DRAM, Flash or emerging NVM technologies * Strong understanding of layout design including layout dependent effects, pitch matching, and design for manufacturing * Familiar with common EDA ...

SRAM, DRAM, Flash or emerging NVM technologies * Strong understanding of layout design including layout dependent effects, pitch matching, and design for manufacturing * Familiar with common EDA ...

In this exciting role, you will perform the following: - Drive the development of SRAM, register files and latch arrays to enable high performance and low power design - Have as comprehensive ...

Compiler Circuit Designer

Santa Clara, CA ยท On-site

$200 - $250/hr

Drive the development of SRAM, register files and latch arrays to enable high performance and low power design * Have as comprehensive understanding of IC compilers that are available globally * Lead ...

New

Compiler Circuit Designer

Santa Clara, CA ยท On-site

$175K - $311K/yr

In this exciting role, you will perform the following: - Drive the development of SRAM, register files and latch arrays to enable high performance and low power design - Have as comprehensive ...

Showing results 21-40

Sram Design information

What is a sram design?

An SRAM Design job involves designing and optimizing Static Random-Access Memory (SRAM) circuits for use in semiconductor devices. Engineers in this role work on transistor-level circuit design, layout, and verification to ensure high performance, low power consumption, and reliability. They collaborate with process engineers, digital designers, and verification teams to meet product specifications. Strong knowledge of CMOS technology, memory architecture, and simulation tools is essential for success in this field.

What are the key skills and qualifications needed to thrive in sram design?

To thrive in SRAM Design, you need a strong background in electrical engineering, semiconductor physics, and digital circuit design, often holding at least a bachelor's or master's degree in a related field. Familiarity with EDA tools like Cadence or Synopsys, experience with SPICE simulations, and understanding of process design kits (PDKs) are typically essential. Attention to detail, problem-solving abilities, and effective teamwork are important soft skills in this role. These skills are critical for developing reliable, efficient memory circuits and ensuring successful collaboration with cross-functional engineering teams.

What are some common challenges faced in sram design roles?

Professionals in SRAM Design often encounter challenges such as meeting aggressive power, performance, and area (PPA) targets while ensuring circuit reliability across various process corners and conditions. Debugging and optimizing circuits to avoid issues like data retention failures or access time violations are frequent aspects of the job. Additionally, collaborating with layout, verification, and product engineering teams requires strong communication and organizational skills. Embracing these challenges can lead to significant technical growth and open pathways for advancement into lead or architect roles in the future.

What job categories do people searching Sram Design jobs in California look for?

The top searched job categories for Sram Design jobs in California are:

Infographic showing various Sram Design job openings in California as of September 2026, with employment types broken down into 1% Internship, 71% Full Time, 26% Part Time, and 2% Contract. Highlights an 81% Physical, 4% Hybrid, and 15% Remote job distribution.

Microarchitect / RTL Design - Memory Subsystem Architecture & Design

Palo Alto, CA โ€ข On-site

$200 - $250/hr

Other

Posted 24 days ago


Job description

About Architect

Architect is a frontier AI lab for chip design. We build AI models and tools for on-demand custom ASICs at scale. Our goal is to co-design custom ASICs alongside evolving ML workloads, and enable a new era of domain-specific chips that unlock capabilities impossible with current hardware paradigms. Born out of Stanford Research, our team blends AI with Silicon with a founding team from Anthropic, Google DeepMind, Meta SuperIntelligence, xAI, Apple and Intel.

What Youโ€™ll Do

As a Founding Member of the Technical Staff on the RTL Design team at Architect, youโ€™ll own the AI-driven microarchitecture and RTL design of the memory subsystem going into production silicon. You will define, drive, and revise the block-level micro-architecture specification for memory controllers, memory hierarchy management, and memory-side accelerators โ€” ensuring maximum bandwidth utilization, minimal latency, and efficient power delivery for compute-intensive ML workloads.

Core Responsibilities
  • Own the memory subsystem RTL end-to-end: from DDR/HBM controller design through code generation, lint, CDC, synthesis, and timing closure using our AI-driven design flow.
  • Design and implement memory controllers: including DDR5/LPDDR5X PHY-side controller logic, HBM3/HBM3E pseudo-channel controllers, command scheduling (open-page/close-page policies, bank-level parallelism), refresh management, and ECC/RAS engines.
  • Architect the memory hierarchy: including multi-level cache controllers, scratchpad memory managers, coherency protocol engines (where applicable), prefetch engines, and bandwidth partitioning/QoS mechanisms to serve diverse traffic profiles from ML accelerator datapaths.
  • Design memory-side accelerators: near-memory compute logic, scatter-gather DMA engines, address translation/remapping units, compression/decompression engines co-located with memory interfaces, and intelligent prefetchers tuned for ML access patterns.
  • Work directly with the principal architect to refine microarchitectural specs, resolve implementation trade-offs (bandwidth vs. latency vs. area vs. power), and feed area/timing/power realities back into the architecture and internal AI systems.
  • Define and maintain interface specifications: DDR PHY interfaces (DFI), HBM PHY interfaces, on-chip SRAM interfaces, AXI/ACE/CHI for memory-facing fabric ports, and custom interfaces for near-memory accelerator datapaths.
  • Build and maintain RTL infrastructure for our in-house AI-driven flow: design automation scripts, regression flows, lint/CDC waivers, and integration collateral for the memory subsystem.
  • Close collaboration with DV: Support verification bring-up with memory timing models, protocol-compliant BFMs, SVA assertions for JEDEC protocol compliance, coverage plans targeting worst-case scheduling scenarios, and architectural documentation for verification closure.
  • Close collaboration with SW and ML: Support and guide our SW and ML experts to revise and improve our in-house AI flow based on your memory subsystem domain expertise โ€” particularly around workload-driven memory access pattern optimization.
  • Support FPGA prototyping on Xilinx for early functional validation of memory controllers, including bring-up with DDR MIG IPs and HBM validation platforms.
What Weโ€™d Like to See Required Qualifications
  • Degree: Bachelorโ€™s, Masterโ€™s, or PhD in Electrical Engineering, Computer Engineering, or a closely related field.
  • Experience: 5+ years (10+ preferred) in RTL design with at least one advanced-node tapeout experience involving memory subsystems (DDR/LPDDR/HBM controllers, cache hierarchies, or memory-intensive SoC subsystems).
  • Memory Interface Expertise: Deep familiarity with JEDEC memory standards โ€” DDR5/LPDDR5X command/address protocols, timing parameters, training sequences, and/or HBM2E/HBM3 pseudo-channel architecture, stack addressing, and interleaving schemes.
  • Memory Controller Design: Hands-on experience designing or owning memory controller blocks including command schedulers, bank state machines, refresh engines (per-bank, fine-granularity), read/write turnaround optimization, and PHY interface timing (DFI or proprietary).
  • Memory Hierarchy Architecture: Experience with multi-level cache design (tag/data arrays, replacement policies, coherence protocols), scratchpad controllers, or unified memory architectures with partitioning and QoS.
  • SystemVerilog: Clear, synthesizable, lint-clean RTL with strong design habits โ€” parameterization for multi-standard support (DDR5/HBM3), modularity for channel/pseudo-channel instantiation, and configurability for different capacity/bandwidth targets.
  • Block-Level Depth: Hands-on experience with SRAM controllers and arbiters, bank conflict resolution, address hashing/interleaving, ECC encode/decode engines, and high-bandwidth data movement between on-chip and off-chip memory.
  • SoC Methodology: Solid grasp of synthesis, timing constraints, clock domain crossings (PHY-to-controller domain, multi-frequency memory interfaces), reset strategies, AMBA protocols (AXI, ACE, CHI), and power management for memory subsystems.
  • Python: Strong skills for design automation, performance modeling, regression infrastructure, and tooling.
  • PPA Ownership: Experience taking a memory controller or cache subsystem from RTL through synthesis and working with PD teams on timing/area/power closure โ€” particularly for high-frequency controller logic and wide data buses.
Bonus Qualifications
  • Experience with HBM integration: interposer-level considerations, PHY calibration, thermal management impacts on refresh.
  • Familiarity with CXL memory pooling, Type 3 device controllers, or disaggregated memory architectures.
  • Near-memory or processing-in-memory (PIM) design experience.
  • Low-power design techniques: DVFS-aware memory scheduling, partial-array self-refresh, clock gating of idle channels, power gating of unused banks.
  • FPGA prototyping experience (Xilinx Vivado/Vitis) with DDR MIG or HBM subsystem IP integration.
  • SVA assertions for JEDEC protocol compliance (command sequencing, timing parameter checking, training state machines).
  • Prior IP building and delivery experience for DDR/LPDDR controllers, HBM controllers, or cache subsystem IPs.
  • Performance modeling: experience building or using cycle-accurate memory system simulators (e.g., DRAMSim, Ramulator) to validate microarchitectural decisions.
  • Domain-specific research contributions: publications or patents in memory systems, memory scheduling algorithms, or memory-centric compute architectures for ML workloads.
Why Architect

You'll join a founding team building the future of chip design at the intersection of AI and silicon. Your memory subsystem expertise will directly shape production ASICs โ€” enabling the bandwidth and efficiency that ML workloads demand โ€” and influence how AI transforms hardware development from spec to tapeout.

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